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/lib/ffmpeg/libavcodec/vc1dec.c

http://github.com/xbmc/xbmc
C | 5908 lines | 5091 code | 462 blank | 355 comment | 1918 complexity | 268d2bc16967f1c51a395e9e3e5266dd MD5 | raw file
Possible License(s): GPL-3.0, CC-BY-SA-3.0, LGPL-2.0, 0BSD, Unlicense, GPL-2.0, AGPL-1.0, BSD-3-Clause, LGPL-2.1, LGPL-3.0
  1. /*
  2. * VC-1 and WMV3 decoder
  3. * Copyright (c) 2011 Mashiat Sarker Shakkhar
  4. * Copyright (c) 2006-2007 Konstantin Shishkov
  5. * Partly based on vc9.c (c) 2005 Anonymous, Alex Beregszaszi, Michael Niedermayer
  6. *
  7. * This file is part of FFmpeg.
  8. *
  9. * FFmpeg is free software; you can redistribute it and/or
  10. * modify it under the terms of the GNU Lesser General Public
  11. * License as published by the Free Software Foundation; either
  12. * version 2.1 of the License, or (at your option) any later version.
  13. *
  14. * FFmpeg is distributed in the hope that it will be useful,
  15. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  16. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  17. * Lesser General Public License for more details.
  18. *
  19. * You should have received a copy of the GNU Lesser General Public
  20. * License along with FFmpeg; if not, write to the Free Software
  21. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  22. */
  23. /**
  24. * @file
  25. * VC-1 and WMV3 decoder
  26. */
  27. #include "internal.h"
  28. #include "avcodec.h"
  29. #include "mpegvideo.h"
  30. #include "h263.h"
  31. #include "h264chroma.h"
  32. #include "vc1.h"
  33. #include "vc1data.h"
  34. #include "vc1acdata.h"
  35. #include "msmpeg4data.h"
  36. #include "unary.h"
  37. #include "mathops.h"
  38. #include "vdpau_internal.h"
  39. #include "libavutil/avassert.h"
  40. #undef NDEBUG
  41. #include <assert.h>
  42. #define MB_INTRA_VLC_BITS 9
  43. #define DC_VLC_BITS 9
  44. // offset tables for interlaced picture MVDATA decoding
  45. static const int offset_table1[9] = { 0, 1, 2, 4, 8, 16, 32, 64, 128 };
  46. static const int offset_table2[9] = { 0, 1, 3, 7, 15, 31, 63, 127, 255 };
  47. /***********************************************************************/
  48. /**
  49. * @name VC-1 Bitplane decoding
  50. * @see 8.7, p56
  51. * @{
  52. */
  53. /**
  54. * Imode types
  55. * @{
  56. */
  57. enum Imode {
  58. IMODE_RAW,
  59. IMODE_NORM2,
  60. IMODE_DIFF2,
  61. IMODE_NORM6,
  62. IMODE_DIFF6,
  63. IMODE_ROWSKIP,
  64. IMODE_COLSKIP
  65. };
  66. /** @} */ //imode defines
  67. static void init_block_index(VC1Context *v)
  68. {
  69. MpegEncContext *s = &v->s;
  70. ff_init_block_index(s);
  71. if (v->field_mode && v->second_field) {
  72. s->dest[0] += s->current_picture_ptr->f.linesize[0];
  73. s->dest[1] += s->current_picture_ptr->f.linesize[1];
  74. s->dest[2] += s->current_picture_ptr->f.linesize[2];
  75. }
  76. }
  77. /** @} */ //Bitplane group
  78. static void vc1_put_signed_blocks_clamped(VC1Context *v)
  79. {
  80. MpegEncContext *s = &v->s;
  81. int topleft_mb_pos, top_mb_pos;
  82. int stride_y, fieldtx = 0;
  83. int v_dist;
  84. /* The put pixels loop is always one MB row behind the decoding loop,
  85. * because we can only put pixels when overlap filtering is done, and
  86. * for filtering of the bottom edge of a MB, we need the next MB row
  87. * present as well.
  88. * Within the row, the put pixels loop is also one MB col behind the
  89. * decoding loop. The reason for this is again, because for filtering
  90. * of the right MB edge, we need the next MB present. */
  91. if (!s->first_slice_line) {
  92. if (s->mb_x) {
  93. topleft_mb_pos = (s->mb_y - 1) * s->mb_stride + s->mb_x - 1;
  94. if (v->fcm == ILACE_FRAME)
  95. fieldtx = v->fieldtx_plane[topleft_mb_pos];
  96. stride_y = s->linesize << fieldtx;
  97. v_dist = (16 - fieldtx) >> (fieldtx == 0);
  98. s->dsp.put_signed_pixels_clamped(v->block[v->topleft_blk_idx][0],
  99. s->dest[0] - 16 * s->linesize - 16,
  100. stride_y);
  101. s->dsp.put_signed_pixels_clamped(v->block[v->topleft_blk_idx][1],
  102. s->dest[0] - 16 * s->linesize - 8,
  103. stride_y);
  104. s->dsp.put_signed_pixels_clamped(v->block[v->topleft_blk_idx][2],
  105. s->dest[0] - v_dist * s->linesize - 16,
  106. stride_y);
  107. s->dsp.put_signed_pixels_clamped(v->block[v->topleft_blk_idx][3],
  108. s->dest[0] - v_dist * s->linesize - 8,
  109. stride_y);
  110. s->dsp.put_signed_pixels_clamped(v->block[v->topleft_blk_idx][4],
  111. s->dest[1] - 8 * s->uvlinesize - 8,
  112. s->uvlinesize);
  113. s->dsp.put_signed_pixels_clamped(v->block[v->topleft_blk_idx][5],
  114. s->dest[2] - 8 * s->uvlinesize - 8,
  115. s->uvlinesize);
  116. }
  117. if (s->mb_x == s->mb_width - 1) {
  118. top_mb_pos = (s->mb_y - 1) * s->mb_stride + s->mb_x;
  119. if (v->fcm == ILACE_FRAME)
  120. fieldtx = v->fieldtx_plane[top_mb_pos];
  121. stride_y = s->linesize << fieldtx;
  122. v_dist = fieldtx ? 15 : 8;
  123. s->dsp.put_signed_pixels_clamped(v->block[v->top_blk_idx][0],
  124. s->dest[0] - 16 * s->linesize,
  125. stride_y);
  126. s->dsp.put_signed_pixels_clamped(v->block[v->top_blk_idx][1],
  127. s->dest[0] - 16 * s->linesize + 8,
  128. stride_y);
  129. s->dsp.put_signed_pixels_clamped(v->block[v->top_blk_idx][2],
  130. s->dest[0] - v_dist * s->linesize,
  131. stride_y);
  132. s->dsp.put_signed_pixels_clamped(v->block[v->top_blk_idx][3],
  133. s->dest[0] - v_dist * s->linesize + 8,
  134. stride_y);
  135. s->dsp.put_signed_pixels_clamped(v->block[v->top_blk_idx][4],
  136. s->dest[1] - 8 * s->uvlinesize,
  137. s->uvlinesize);
  138. s->dsp.put_signed_pixels_clamped(v->block[v->top_blk_idx][5],
  139. s->dest[2] - 8 * s->uvlinesize,
  140. s->uvlinesize);
  141. }
  142. }
  143. #define inc_blk_idx(idx) do { \
  144. idx++; \
  145. if (idx >= v->n_allocated_blks) \
  146. idx = 0; \
  147. } while (0)
  148. inc_blk_idx(v->topleft_blk_idx);
  149. inc_blk_idx(v->top_blk_idx);
  150. inc_blk_idx(v->left_blk_idx);
  151. inc_blk_idx(v->cur_blk_idx);
  152. }
  153. static void vc1_loop_filter_iblk(VC1Context *v, int pq)
  154. {
  155. MpegEncContext *s = &v->s;
  156. int j;
  157. if (!s->first_slice_line) {
  158. v->vc1dsp.vc1_v_loop_filter16(s->dest[0], s->linesize, pq);
  159. if (s->mb_x)
  160. v->vc1dsp.vc1_h_loop_filter16(s->dest[0] - 16 * s->linesize, s->linesize, pq);
  161. v->vc1dsp.vc1_h_loop_filter16(s->dest[0] - 16 * s->linesize + 8, s->linesize, pq);
  162. for (j = 0; j < 2; j++) {
  163. v->vc1dsp.vc1_v_loop_filter8(s->dest[j + 1], s->uvlinesize, pq);
  164. if (s->mb_x)
  165. v->vc1dsp.vc1_h_loop_filter8(s->dest[j + 1] - 8 * s->uvlinesize, s->uvlinesize, pq);
  166. }
  167. }
  168. v->vc1dsp.vc1_v_loop_filter16(s->dest[0] + 8 * s->linesize, s->linesize, pq);
  169. if (s->mb_y == s->end_mb_y - 1) {
  170. if (s->mb_x) {
  171. v->vc1dsp.vc1_h_loop_filter16(s->dest[0], s->linesize, pq);
  172. v->vc1dsp.vc1_h_loop_filter8(s->dest[1], s->uvlinesize, pq);
  173. v->vc1dsp.vc1_h_loop_filter8(s->dest[2], s->uvlinesize, pq);
  174. }
  175. v->vc1dsp.vc1_h_loop_filter16(s->dest[0] + 8, s->linesize, pq);
  176. }
  177. }
  178. static void vc1_loop_filter_iblk_delayed(VC1Context *v, int pq)
  179. {
  180. MpegEncContext *s = &v->s;
  181. int j;
  182. /* The loopfilter runs 1 row and 1 column behind the overlap filter, which
  183. * means it runs two rows/cols behind the decoding loop. */
  184. if (!s->first_slice_line) {
  185. if (s->mb_x) {
  186. if (s->mb_y >= s->start_mb_y + 2) {
  187. v->vc1dsp.vc1_v_loop_filter16(s->dest[0] - 16 * s->linesize - 16, s->linesize, pq);
  188. if (s->mb_x >= 2)
  189. v->vc1dsp.vc1_h_loop_filter16(s->dest[0] - 32 * s->linesize - 16, s->linesize, pq);
  190. v->vc1dsp.vc1_h_loop_filter16(s->dest[0] - 32 * s->linesize - 8, s->linesize, pq);
  191. for (j = 0; j < 2; j++) {
  192. v->vc1dsp.vc1_v_loop_filter8(s->dest[j + 1] - 8 * s->uvlinesize - 8, s->uvlinesize, pq);
  193. if (s->mb_x >= 2) {
  194. v->vc1dsp.vc1_h_loop_filter8(s->dest[j + 1] - 16 * s->uvlinesize - 8, s->uvlinesize, pq);
  195. }
  196. }
  197. }
  198. v->vc1dsp.vc1_v_loop_filter16(s->dest[0] - 8 * s->linesize - 16, s->linesize, pq);
  199. }
  200. if (s->mb_x == s->mb_width - 1) {
  201. if (s->mb_y >= s->start_mb_y + 2) {
  202. v->vc1dsp.vc1_v_loop_filter16(s->dest[0] - 16 * s->linesize, s->linesize, pq);
  203. if (s->mb_x)
  204. v->vc1dsp.vc1_h_loop_filter16(s->dest[0] - 32 * s->linesize, s->linesize, pq);
  205. v->vc1dsp.vc1_h_loop_filter16(s->dest[0] - 32 * s->linesize + 8, s->linesize, pq);
  206. for (j = 0; j < 2; j++) {
  207. v->vc1dsp.vc1_v_loop_filter8(s->dest[j + 1] - 8 * s->uvlinesize, s->uvlinesize, pq);
  208. if (s->mb_x >= 2) {
  209. v->vc1dsp.vc1_h_loop_filter8(s->dest[j + 1] - 16 * s->uvlinesize, s->uvlinesize, pq);
  210. }
  211. }
  212. }
  213. v->vc1dsp.vc1_v_loop_filter16(s->dest[0] - 8 * s->linesize, s->linesize, pq);
  214. }
  215. if (s->mb_y == s->end_mb_y) {
  216. if (s->mb_x) {
  217. if (s->mb_x >= 2)
  218. v->vc1dsp.vc1_h_loop_filter16(s->dest[0] - 16 * s->linesize - 16, s->linesize, pq);
  219. v->vc1dsp.vc1_h_loop_filter16(s->dest[0] - 16 * s->linesize - 8, s->linesize, pq);
  220. if (s->mb_x >= 2) {
  221. for (j = 0; j < 2; j++) {
  222. v->vc1dsp.vc1_h_loop_filter8(s->dest[j + 1] - 8 * s->uvlinesize - 8, s->uvlinesize, pq);
  223. }
  224. }
  225. }
  226. if (s->mb_x == s->mb_width - 1) {
  227. if (s->mb_x)
  228. v->vc1dsp.vc1_h_loop_filter16(s->dest[0] - 16 * s->linesize, s->linesize, pq);
  229. v->vc1dsp.vc1_h_loop_filter16(s->dest[0] - 16 * s->linesize + 8, s->linesize, pq);
  230. if (s->mb_x) {
  231. for (j = 0; j < 2; j++) {
  232. v->vc1dsp.vc1_h_loop_filter8(s->dest[j + 1] - 8 * s->uvlinesize, s->uvlinesize, pq);
  233. }
  234. }
  235. }
  236. }
  237. }
  238. }
  239. static void vc1_smooth_overlap_filter_iblk(VC1Context *v)
  240. {
  241. MpegEncContext *s = &v->s;
  242. int mb_pos;
  243. if (v->condover == CONDOVER_NONE)
  244. return;
  245. mb_pos = s->mb_x + s->mb_y * s->mb_stride;
  246. /* Within a MB, the horizontal overlap always runs before the vertical.
  247. * To accomplish that, we run the H on left and internal borders of the
  248. * currently decoded MB. Then, we wait for the next overlap iteration
  249. * to do H overlap on the right edge of this MB, before moving over and
  250. * running the V overlap. Therefore, the V overlap makes us trail by one
  251. * MB col and the H overlap filter makes us trail by one MB row. This
  252. * is reflected in the time at which we run the put_pixels loop. */
  253. if (v->condover == CONDOVER_ALL || v->pq >= 9 || v->over_flags_plane[mb_pos]) {
  254. if (s->mb_x && (v->condover == CONDOVER_ALL || v->pq >= 9 ||
  255. v->over_flags_plane[mb_pos - 1])) {
  256. v->vc1dsp.vc1_h_s_overlap(v->block[v->left_blk_idx][1],
  257. v->block[v->cur_blk_idx][0]);
  258. v->vc1dsp.vc1_h_s_overlap(v->block[v->left_blk_idx][3],
  259. v->block[v->cur_blk_idx][2]);
  260. if (!(s->flags & CODEC_FLAG_GRAY)) {
  261. v->vc1dsp.vc1_h_s_overlap(v->block[v->left_blk_idx][4],
  262. v->block[v->cur_blk_idx][4]);
  263. v->vc1dsp.vc1_h_s_overlap(v->block[v->left_blk_idx][5],
  264. v->block[v->cur_blk_idx][5]);
  265. }
  266. }
  267. v->vc1dsp.vc1_h_s_overlap(v->block[v->cur_blk_idx][0],
  268. v->block[v->cur_blk_idx][1]);
  269. v->vc1dsp.vc1_h_s_overlap(v->block[v->cur_blk_idx][2],
  270. v->block[v->cur_blk_idx][3]);
  271. if (s->mb_x == s->mb_width - 1) {
  272. if (!s->first_slice_line && (v->condover == CONDOVER_ALL || v->pq >= 9 ||
  273. v->over_flags_plane[mb_pos - s->mb_stride])) {
  274. v->vc1dsp.vc1_v_s_overlap(v->block[v->top_blk_idx][2],
  275. v->block[v->cur_blk_idx][0]);
  276. v->vc1dsp.vc1_v_s_overlap(v->block[v->top_blk_idx][3],
  277. v->block[v->cur_blk_idx][1]);
  278. if (!(s->flags & CODEC_FLAG_GRAY)) {
  279. v->vc1dsp.vc1_v_s_overlap(v->block[v->top_blk_idx][4],
  280. v->block[v->cur_blk_idx][4]);
  281. v->vc1dsp.vc1_v_s_overlap(v->block[v->top_blk_idx][5],
  282. v->block[v->cur_blk_idx][5]);
  283. }
  284. }
  285. v->vc1dsp.vc1_v_s_overlap(v->block[v->cur_blk_idx][0],
  286. v->block[v->cur_blk_idx][2]);
  287. v->vc1dsp.vc1_v_s_overlap(v->block[v->cur_blk_idx][1],
  288. v->block[v->cur_blk_idx][3]);
  289. }
  290. }
  291. if (s->mb_x && (v->condover == CONDOVER_ALL || v->over_flags_plane[mb_pos - 1])) {
  292. if (!s->first_slice_line && (v->condover == CONDOVER_ALL || v->pq >= 9 ||
  293. v->over_flags_plane[mb_pos - s->mb_stride - 1])) {
  294. v->vc1dsp.vc1_v_s_overlap(v->block[v->topleft_blk_idx][2],
  295. v->block[v->left_blk_idx][0]);
  296. v->vc1dsp.vc1_v_s_overlap(v->block[v->topleft_blk_idx][3],
  297. v->block[v->left_blk_idx][1]);
  298. if (!(s->flags & CODEC_FLAG_GRAY)) {
  299. v->vc1dsp.vc1_v_s_overlap(v->block[v->topleft_blk_idx][4],
  300. v->block[v->left_blk_idx][4]);
  301. v->vc1dsp.vc1_v_s_overlap(v->block[v->topleft_blk_idx][5],
  302. v->block[v->left_blk_idx][5]);
  303. }
  304. }
  305. v->vc1dsp.vc1_v_s_overlap(v->block[v->left_blk_idx][0],
  306. v->block[v->left_blk_idx][2]);
  307. v->vc1dsp.vc1_v_s_overlap(v->block[v->left_blk_idx][1],
  308. v->block[v->left_blk_idx][3]);
  309. }
  310. }
  311. /** Do motion compensation over 1 macroblock
  312. * Mostly adapted hpel_motion and qpel_motion from mpegvideo.c
  313. */
  314. static void vc1_mc_1mv(VC1Context *v, int dir)
  315. {
  316. MpegEncContext *s = &v->s;
  317. DSPContext *dsp = &v->s.dsp;
  318. H264ChromaContext *h264chroma = &v->h264chroma;
  319. uint8_t *srcY, *srcU, *srcV;
  320. int dxy, mx, my, uvmx, uvmy, src_x, src_y, uvsrc_x, uvsrc_y;
  321. int off, off_uv;
  322. int v_edge_pos = s->v_edge_pos >> v->field_mode;
  323. if ((!v->field_mode ||
  324. (v->ref_field_type[dir] == 1 && v->cur_field_type == 1)) &&
  325. !v->s.last_picture.f.data[0])
  326. return;
  327. mx = s->mv[dir][0][0];
  328. my = s->mv[dir][0][1];
  329. // store motion vectors for further use in B frames
  330. if (s->pict_type == AV_PICTURE_TYPE_P) {
  331. s->current_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][0] = mx;
  332. s->current_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][1] = my;
  333. }
  334. uvmx = (mx + ((mx & 3) == 3)) >> 1;
  335. uvmy = (my + ((my & 3) == 3)) >> 1;
  336. v->luma_mv[s->mb_x][0] = uvmx;
  337. v->luma_mv[s->mb_x][1] = uvmy;
  338. if (v->field_mode &&
  339. v->cur_field_type != v->ref_field_type[dir]) {
  340. my = my - 2 + 4 * v->cur_field_type;
  341. uvmy = uvmy - 2 + 4 * v->cur_field_type;
  342. }
  343. // fastuvmc shall be ignored for interlaced frame picture
  344. if (v->fastuvmc && (v->fcm != ILACE_FRAME)) {
  345. uvmx = uvmx + ((uvmx < 0) ? (uvmx & 1) : -(uvmx & 1));
  346. uvmy = uvmy + ((uvmy < 0) ? (uvmy & 1) : -(uvmy & 1));
  347. }
  348. if (v->field_mode) { // interlaced field picture
  349. if (!dir) {
  350. if ((v->cur_field_type != v->ref_field_type[dir]) && v->second_field) {
  351. srcY = s->current_picture.f.data[0];
  352. srcU = s->current_picture.f.data[1];
  353. srcV = s->current_picture.f.data[2];
  354. } else {
  355. srcY = s->last_picture.f.data[0];
  356. srcU = s->last_picture.f.data[1];
  357. srcV = s->last_picture.f.data[2];
  358. }
  359. } else {
  360. srcY = s->next_picture.f.data[0];
  361. srcU = s->next_picture.f.data[1];
  362. srcV = s->next_picture.f.data[2];
  363. }
  364. } else {
  365. if (!dir) {
  366. srcY = s->last_picture.f.data[0];
  367. srcU = s->last_picture.f.data[1];
  368. srcV = s->last_picture.f.data[2];
  369. } else {
  370. srcY = s->next_picture.f.data[0];
  371. srcU = s->next_picture.f.data[1];
  372. srcV = s->next_picture.f.data[2];
  373. }
  374. }
  375. if(!srcY)
  376. return;
  377. src_x = s->mb_x * 16 + (mx >> 2);
  378. src_y = s->mb_y * 16 + (my >> 2);
  379. uvsrc_x = s->mb_x * 8 + (uvmx >> 2);
  380. uvsrc_y = s->mb_y * 8 + (uvmy >> 2);
  381. if (v->profile != PROFILE_ADVANCED) {
  382. src_x = av_clip( src_x, -16, s->mb_width * 16);
  383. src_y = av_clip( src_y, -16, s->mb_height * 16);
  384. uvsrc_x = av_clip(uvsrc_x, -8, s->mb_width * 8);
  385. uvsrc_y = av_clip(uvsrc_y, -8, s->mb_height * 8);
  386. } else {
  387. src_x = av_clip( src_x, -17, s->avctx->coded_width);
  388. src_y = av_clip( src_y, -18, s->avctx->coded_height + 1);
  389. uvsrc_x = av_clip(uvsrc_x, -8, s->avctx->coded_width >> 1);
  390. uvsrc_y = av_clip(uvsrc_y, -8, s->avctx->coded_height >> 1);
  391. }
  392. srcY += src_y * s->linesize + src_x;
  393. srcU += uvsrc_y * s->uvlinesize + uvsrc_x;
  394. srcV += uvsrc_y * s->uvlinesize + uvsrc_x;
  395. if (v->field_mode && v->ref_field_type[dir]) {
  396. srcY += s->current_picture_ptr->f.linesize[0];
  397. srcU += s->current_picture_ptr->f.linesize[1];
  398. srcV += s->current_picture_ptr->f.linesize[2];
  399. }
  400. /* for grayscale we should not try to read from unknown area */
  401. if (s->flags & CODEC_FLAG_GRAY) {
  402. srcU = s->edge_emu_buffer + 18 * s->linesize;
  403. srcV = s->edge_emu_buffer + 18 * s->linesize;
  404. }
  405. if (v->rangeredfrm || (v->mv_mode == MV_PMODE_INTENSITY_COMP)
  406. || s->h_edge_pos < 22 || v_edge_pos < 22
  407. || (unsigned)(src_x - s->mspel) > s->h_edge_pos - (mx&3) - 16 - s->mspel * 3
  408. || (unsigned)(src_y - 1) > v_edge_pos - (my&3) - 16 - 3) {
  409. uint8_t *uvbuf = s->edge_emu_buffer + 19 * s->linesize;
  410. srcY -= s->mspel * (1 + s->linesize);
  411. s->vdsp.emulated_edge_mc(s->edge_emu_buffer, srcY, s->linesize,
  412. 17 + s->mspel * 2, 17 + s->mspel * 2,
  413. src_x - s->mspel, src_y - s->mspel,
  414. s->h_edge_pos, v_edge_pos);
  415. srcY = s->edge_emu_buffer;
  416. s->vdsp.emulated_edge_mc(uvbuf , srcU, s->uvlinesize, 8 + 1, 8 + 1,
  417. uvsrc_x, uvsrc_y, s->h_edge_pos >> 1, v_edge_pos >> 1);
  418. s->vdsp.emulated_edge_mc(uvbuf + 16, srcV, s->uvlinesize, 8 + 1, 8 + 1,
  419. uvsrc_x, uvsrc_y, s->h_edge_pos >> 1, v_edge_pos >> 1);
  420. srcU = uvbuf;
  421. srcV = uvbuf + 16;
  422. /* if we deal with range reduction we need to scale source blocks */
  423. if (v->rangeredfrm) {
  424. int i, j;
  425. uint8_t *src, *src2;
  426. src = srcY;
  427. for (j = 0; j < 17 + s->mspel * 2; j++) {
  428. for (i = 0; i < 17 + s->mspel * 2; i++)
  429. src[i] = ((src[i] - 128) >> 1) + 128;
  430. src += s->linesize;
  431. }
  432. src = srcU;
  433. src2 = srcV;
  434. for (j = 0; j < 9; j++) {
  435. for (i = 0; i < 9; i++) {
  436. src[i] = ((src[i] - 128) >> 1) + 128;
  437. src2[i] = ((src2[i] - 128) >> 1) + 128;
  438. }
  439. src += s->uvlinesize;
  440. src2 += s->uvlinesize;
  441. }
  442. }
  443. /* if we deal with intensity compensation we need to scale source blocks */
  444. if (v->mv_mode == MV_PMODE_INTENSITY_COMP) {
  445. int i, j;
  446. uint8_t *src, *src2;
  447. src = srcY;
  448. for (j = 0; j < 17 + s->mspel * 2; j++) {
  449. for (i = 0; i < 17 + s->mspel * 2; i++)
  450. src[i] = v->luty[src[i]];
  451. src += s->linesize;
  452. }
  453. src = srcU;
  454. src2 = srcV;
  455. for (j = 0; j < 9; j++) {
  456. for (i = 0; i < 9; i++) {
  457. src[i] = v->lutuv[src[i]];
  458. src2[i] = v->lutuv[src2[i]];
  459. }
  460. src += s->uvlinesize;
  461. src2 += s->uvlinesize;
  462. }
  463. }
  464. srcY += s->mspel * (1 + s->linesize);
  465. }
  466. off = 0;
  467. off_uv = 0;
  468. if (s->mspel) {
  469. dxy = ((my & 3) << 2) | (mx & 3);
  470. v->vc1dsp.put_vc1_mspel_pixels_tab[dxy](s->dest[0] + off , srcY , s->linesize, v->rnd);
  471. v->vc1dsp.put_vc1_mspel_pixels_tab[dxy](s->dest[0] + off + 8, srcY + 8, s->linesize, v->rnd);
  472. srcY += s->linesize * 8;
  473. v->vc1dsp.put_vc1_mspel_pixels_tab[dxy](s->dest[0] + off + 8 * s->linesize , srcY , s->linesize, v->rnd);
  474. v->vc1dsp.put_vc1_mspel_pixels_tab[dxy](s->dest[0] + off + 8 * s->linesize + 8, srcY + 8, s->linesize, v->rnd);
  475. } else { // hpel mc - always used for luma
  476. dxy = (my & 2) | ((mx & 2) >> 1);
  477. if (!v->rnd)
  478. dsp->put_pixels_tab[0][dxy](s->dest[0] + off, srcY, s->linesize, 16);
  479. else
  480. dsp->put_no_rnd_pixels_tab[0][dxy](s->dest[0] + off, srcY, s->linesize, 16);
  481. }
  482. if (s->flags & CODEC_FLAG_GRAY) return;
  483. /* Chroma MC always uses qpel bilinear */
  484. uvmx = (uvmx & 3) << 1;
  485. uvmy = (uvmy & 3) << 1;
  486. if (!v->rnd) {
  487. h264chroma->put_h264_chroma_pixels_tab[0](s->dest[1] + off_uv, srcU, s->uvlinesize, 8, uvmx, uvmy);
  488. h264chroma->put_h264_chroma_pixels_tab[0](s->dest[2] + off_uv, srcV, s->uvlinesize, 8, uvmx, uvmy);
  489. } else {
  490. v->vc1dsp.put_no_rnd_vc1_chroma_pixels_tab[0](s->dest[1] + off_uv, srcU, s->uvlinesize, 8, uvmx, uvmy);
  491. v->vc1dsp.put_no_rnd_vc1_chroma_pixels_tab[0](s->dest[2] + off_uv, srcV, s->uvlinesize, 8, uvmx, uvmy);
  492. }
  493. }
  494. static inline int median4(int a, int b, int c, int d)
  495. {
  496. if (a < b) {
  497. if (c < d) return (FFMIN(b, d) + FFMAX(a, c)) / 2;
  498. else return (FFMIN(b, c) + FFMAX(a, d)) / 2;
  499. } else {
  500. if (c < d) return (FFMIN(a, d) + FFMAX(b, c)) / 2;
  501. else return (FFMIN(a, c) + FFMAX(b, d)) / 2;
  502. }
  503. }
  504. /** Do motion compensation for 4-MV macroblock - luminance block
  505. */
  506. static void vc1_mc_4mv_luma(VC1Context *v, int n, int dir)
  507. {
  508. MpegEncContext *s = &v->s;
  509. DSPContext *dsp = &v->s.dsp;
  510. uint8_t *srcY;
  511. int dxy, mx, my, src_x, src_y;
  512. int off;
  513. int fieldmv = (v->fcm == ILACE_FRAME) ? v->blk_mv_type[s->block_index[n]] : 0;
  514. int v_edge_pos = s->v_edge_pos >> v->field_mode;
  515. if ((!v->field_mode ||
  516. (v->ref_field_type[dir] == 1 && v->cur_field_type == 1)) &&
  517. !v->s.last_picture.f.data[0])
  518. return;
  519. mx = s->mv[dir][n][0];
  520. my = s->mv[dir][n][1];
  521. if (!dir) {
  522. if (v->field_mode) {
  523. if ((v->cur_field_type != v->ref_field_type[dir]) && v->second_field)
  524. srcY = s->current_picture.f.data[0];
  525. else
  526. srcY = s->last_picture.f.data[0];
  527. } else
  528. srcY = s->last_picture.f.data[0];
  529. } else
  530. srcY = s->next_picture.f.data[0];
  531. if(!srcY)
  532. return;
  533. if (v->field_mode) {
  534. if (v->cur_field_type != v->ref_field_type[dir])
  535. my = my - 2 + 4 * v->cur_field_type;
  536. }
  537. if (s->pict_type == AV_PICTURE_TYPE_P && n == 3 && v->field_mode) {
  538. int same_count = 0, opp_count = 0, k;
  539. int chosen_mv[2][4][2], f;
  540. int tx, ty;
  541. for (k = 0; k < 4; k++) {
  542. f = v->mv_f[0][s->block_index[k] + v->blocks_off];
  543. chosen_mv[f][f ? opp_count : same_count][0] = s->mv[0][k][0];
  544. chosen_mv[f][f ? opp_count : same_count][1] = s->mv[0][k][1];
  545. opp_count += f;
  546. same_count += 1 - f;
  547. }
  548. f = opp_count > same_count;
  549. switch (f ? opp_count : same_count) {
  550. case 4:
  551. tx = median4(chosen_mv[f][0][0], chosen_mv[f][1][0],
  552. chosen_mv[f][2][0], chosen_mv[f][3][0]);
  553. ty = median4(chosen_mv[f][0][1], chosen_mv[f][1][1],
  554. chosen_mv[f][2][1], chosen_mv[f][3][1]);
  555. break;
  556. case 3:
  557. tx = mid_pred(chosen_mv[f][0][0], chosen_mv[f][1][0], chosen_mv[f][2][0]);
  558. ty = mid_pred(chosen_mv[f][0][1], chosen_mv[f][1][1], chosen_mv[f][2][1]);
  559. break;
  560. case 2:
  561. tx = (chosen_mv[f][0][0] + chosen_mv[f][1][0]) / 2;
  562. ty = (chosen_mv[f][0][1] + chosen_mv[f][1][1]) / 2;
  563. break;
  564. default:
  565. av_assert2(0);
  566. }
  567. s->current_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][0] = tx;
  568. s->current_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][1] = ty;
  569. for (k = 0; k < 4; k++)
  570. v->mv_f[1][s->block_index[k] + v->blocks_off] = f;
  571. }
  572. if (v->fcm == ILACE_FRAME) { // not sure if needed for other types of picture
  573. int qx, qy;
  574. int width = s->avctx->coded_width;
  575. int height = s->avctx->coded_height >> 1;
  576. qx = (s->mb_x * 16) + (mx >> 2);
  577. qy = (s->mb_y * 8) + (my >> 3);
  578. if (qx < -17)
  579. mx -= 4 * (qx + 17);
  580. else if (qx > width)
  581. mx -= 4 * (qx - width);
  582. if (qy < -18)
  583. my -= 8 * (qy + 18);
  584. else if (qy > height + 1)
  585. my -= 8 * (qy - height - 1);
  586. }
  587. if ((v->fcm == ILACE_FRAME) && fieldmv)
  588. off = ((n > 1) ? s->linesize : 0) + (n & 1) * 8;
  589. else
  590. off = s->linesize * 4 * (n & 2) + (n & 1) * 8;
  591. src_x = s->mb_x * 16 + (n & 1) * 8 + (mx >> 2);
  592. if (!fieldmv)
  593. src_y = s->mb_y * 16 + (n & 2) * 4 + (my >> 2);
  594. else
  595. src_y = s->mb_y * 16 + ((n > 1) ? 1 : 0) + (my >> 2);
  596. if (v->profile != PROFILE_ADVANCED) {
  597. src_x = av_clip(src_x, -16, s->mb_width * 16);
  598. src_y = av_clip(src_y, -16, s->mb_height * 16);
  599. } else {
  600. src_x = av_clip(src_x, -17, s->avctx->coded_width);
  601. if (v->fcm == ILACE_FRAME) {
  602. if (src_y & 1)
  603. src_y = av_clip(src_y, -17, s->avctx->coded_height + 1);
  604. else
  605. src_y = av_clip(src_y, -18, s->avctx->coded_height);
  606. } else {
  607. src_y = av_clip(src_y, -18, s->avctx->coded_height + 1);
  608. }
  609. }
  610. srcY += src_y * s->linesize + src_x;
  611. if (v->field_mode && v->ref_field_type[dir])
  612. srcY += s->current_picture_ptr->f.linesize[0];
  613. if (fieldmv && !(src_y & 1))
  614. v_edge_pos--;
  615. if (fieldmv && (src_y & 1) && src_y < 4)
  616. src_y--;
  617. if (v->rangeredfrm || (v->mv_mode == MV_PMODE_INTENSITY_COMP)
  618. || s->h_edge_pos < 13 || v_edge_pos < 23
  619. || (unsigned)(src_x - s->mspel) > s->h_edge_pos - (mx & 3) - 8 - s->mspel * 2
  620. || (unsigned)(src_y - (s->mspel << fieldmv)) > v_edge_pos - (my & 3) - ((8 + s->mspel * 2) << fieldmv)) {
  621. srcY -= s->mspel * (1 + (s->linesize << fieldmv));
  622. /* check emulate edge stride and offset */
  623. s->vdsp.emulated_edge_mc(s->edge_emu_buffer, srcY, s->linesize,
  624. 9 + s->mspel * 2, (9 + s->mspel * 2) << fieldmv,
  625. src_x - s->mspel, src_y - (s->mspel << fieldmv),
  626. s->h_edge_pos, v_edge_pos);
  627. srcY = s->edge_emu_buffer;
  628. /* if we deal with range reduction we need to scale source blocks */
  629. if (v->rangeredfrm) {
  630. int i, j;
  631. uint8_t *src;
  632. src = srcY;
  633. for (j = 0; j < 9 + s->mspel * 2; j++) {
  634. for (i = 0; i < 9 + s->mspel * 2; i++)
  635. src[i] = ((src[i] - 128) >> 1) + 128;
  636. src += s->linesize << fieldmv;
  637. }
  638. }
  639. /* if we deal with intensity compensation we need to scale source blocks */
  640. if (v->mv_mode == MV_PMODE_INTENSITY_COMP) {
  641. int i, j;
  642. uint8_t *src;
  643. src = srcY;
  644. for (j = 0; j < 9 + s->mspel * 2; j++) {
  645. for (i = 0; i < 9 + s->mspel * 2; i++)
  646. src[i] = v->luty[src[i]];
  647. src += s->linesize << fieldmv;
  648. }
  649. }
  650. srcY += s->mspel * (1 + (s->linesize << fieldmv));
  651. }
  652. if (s->mspel) {
  653. dxy = ((my & 3) << 2) | (mx & 3);
  654. v->vc1dsp.put_vc1_mspel_pixels_tab[dxy](s->dest[0] + off, srcY, s->linesize << fieldmv, v->rnd);
  655. } else { // hpel mc - always used for luma
  656. dxy = (my & 2) | ((mx & 2) >> 1);
  657. if (!v->rnd)
  658. dsp->put_pixels_tab[1][dxy](s->dest[0] + off, srcY, s->linesize, 8);
  659. else
  660. dsp->put_no_rnd_pixels_tab[1][dxy](s->dest[0] + off, srcY, s->linesize, 8);
  661. }
  662. }
  663. static av_always_inline int get_chroma_mv(int *mvx, int *mvy, int *a, int flag, int *tx, int *ty)
  664. {
  665. int idx, i;
  666. static const int count[16] = { 0, 1, 1, 2, 1, 2, 2, 3, 1, 2, 2, 3, 2, 3, 3, 4};
  667. idx = ((a[3] != flag) << 3)
  668. | ((a[2] != flag) << 2)
  669. | ((a[1] != flag) << 1)
  670. | (a[0] != flag);
  671. if (!idx) {
  672. *tx = median4(mvx[0], mvx[1], mvx[2], mvx[3]);
  673. *ty = median4(mvy[0], mvy[1], mvy[2], mvy[3]);
  674. return 4;
  675. } else if (count[idx] == 1) {
  676. switch (idx) {
  677. case 0x1:
  678. *tx = mid_pred(mvx[1], mvx[2], mvx[3]);
  679. *ty = mid_pred(mvy[1], mvy[2], mvy[3]);
  680. return 3;
  681. case 0x2:
  682. *tx = mid_pred(mvx[0], mvx[2], mvx[3]);
  683. *ty = mid_pred(mvy[0], mvy[2], mvy[3]);
  684. return 3;
  685. case 0x4:
  686. *tx = mid_pred(mvx[0], mvx[1], mvx[3]);
  687. *ty = mid_pred(mvy[0], mvy[1], mvy[3]);
  688. return 3;
  689. case 0x8:
  690. *tx = mid_pred(mvx[0], mvx[1], mvx[2]);
  691. *ty = mid_pred(mvy[0], mvy[1], mvy[2]);
  692. return 3;
  693. }
  694. } else if (count[idx] == 2) {
  695. int t1 = 0, t2 = 0;
  696. for (i = 0; i < 3; i++)
  697. if (!a[i]) {
  698. t1 = i;
  699. break;
  700. }
  701. for (i = t1 + 1; i < 4; i++)
  702. if (!a[i]) {
  703. t2 = i;
  704. break;
  705. }
  706. *tx = (mvx[t1] + mvx[t2]) / 2;
  707. *ty = (mvy[t1] + mvy[t2]) / 2;
  708. return 2;
  709. } else {
  710. return 0;
  711. }
  712. return -1;
  713. }
  714. /** Do motion compensation for 4-MV macroblock - both chroma blocks
  715. */
  716. static void vc1_mc_4mv_chroma(VC1Context *v, int dir)
  717. {
  718. MpegEncContext *s = &v->s;
  719. H264ChromaContext *h264chroma = &v->h264chroma;
  720. uint8_t *srcU, *srcV;
  721. int uvmx, uvmy, uvsrc_x, uvsrc_y;
  722. int k, tx = 0, ty = 0;
  723. int mvx[4], mvy[4], intra[4], mv_f[4];
  724. int valid_count;
  725. int chroma_ref_type = v->cur_field_type, off = 0;
  726. int v_edge_pos = s->v_edge_pos >> v->field_mode;
  727. if (!v->field_mode && !v->s.last_picture.f.data[0])
  728. return;
  729. if (s->flags & CODEC_FLAG_GRAY)
  730. return;
  731. for (k = 0; k < 4; k++) {
  732. mvx[k] = s->mv[dir][k][0];
  733. mvy[k] = s->mv[dir][k][1];
  734. intra[k] = v->mb_type[0][s->block_index[k]];
  735. if (v->field_mode)
  736. mv_f[k] = v->mv_f[dir][s->block_index[k] + v->blocks_off];
  737. }
  738. /* calculate chroma MV vector from four luma MVs */
  739. if (!v->field_mode || (v->field_mode && !v->numref)) {
  740. valid_count = get_chroma_mv(mvx, mvy, intra, 0, &tx, &ty);
  741. chroma_ref_type = v->reffield;
  742. if (!valid_count) {
  743. s->current_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][0] = 0;
  744. s->current_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][1] = 0;
  745. v->luma_mv[s->mb_x][0] = v->luma_mv[s->mb_x][1] = 0;
  746. return; //no need to do MC for intra blocks
  747. }
  748. } else {
  749. int dominant = 0;
  750. if (mv_f[0] + mv_f[1] + mv_f[2] + mv_f[3] > 2)
  751. dominant = 1;
  752. valid_count = get_chroma_mv(mvx, mvy, mv_f, dominant, &tx, &ty);
  753. if (dominant)
  754. chroma_ref_type = !v->cur_field_type;
  755. }
  756. if (v->field_mode && chroma_ref_type == 1 && v->cur_field_type == 1 && !v->s.last_picture.f.data[0])
  757. return;
  758. s->current_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][0] = tx;
  759. s->current_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][1] = ty;
  760. uvmx = (tx + ((tx & 3) == 3)) >> 1;
  761. uvmy = (ty + ((ty & 3) == 3)) >> 1;
  762. v->luma_mv[s->mb_x][0] = uvmx;
  763. v->luma_mv[s->mb_x][1] = uvmy;
  764. if (v->fastuvmc) {
  765. uvmx = uvmx + ((uvmx < 0) ? (uvmx & 1) : -(uvmx & 1));
  766. uvmy = uvmy + ((uvmy < 0) ? (uvmy & 1) : -(uvmy & 1));
  767. }
  768. // Field conversion bias
  769. if (v->cur_field_type != chroma_ref_type)
  770. uvmy += 2 - 4 * chroma_ref_type;
  771. uvsrc_x = s->mb_x * 8 + (uvmx >> 2);
  772. uvsrc_y = s->mb_y * 8 + (uvmy >> 2);
  773. if (v->profile != PROFILE_ADVANCED) {
  774. uvsrc_x = av_clip(uvsrc_x, -8, s->mb_width * 8);
  775. uvsrc_y = av_clip(uvsrc_y, -8, s->mb_height * 8);
  776. } else {
  777. uvsrc_x = av_clip(uvsrc_x, -8, s->avctx->coded_width >> 1);
  778. uvsrc_y = av_clip(uvsrc_y, -8, s->avctx->coded_height >> 1);
  779. }
  780. if (!dir) {
  781. if (v->field_mode) {
  782. if ((v->cur_field_type != chroma_ref_type) && v->cur_field_type) {
  783. srcU = s->current_picture.f.data[1];
  784. srcV = s->current_picture.f.data[2];
  785. } else {
  786. srcU = s->last_picture.f.data[1];
  787. srcV = s->last_picture.f.data[2];
  788. }
  789. } else {
  790. srcU = s->last_picture.f.data[1];
  791. srcV = s->last_picture.f.data[2];
  792. }
  793. } else {
  794. srcU = s->next_picture.f.data[1];
  795. srcV = s->next_picture.f.data[2];
  796. }
  797. if(!srcU)
  798. return;
  799. srcU += uvsrc_y * s->uvlinesize + uvsrc_x;
  800. srcV += uvsrc_y * s->uvlinesize + uvsrc_x;
  801. if (v->field_mode) {
  802. if (chroma_ref_type) {
  803. srcU += s->current_picture_ptr->f.linesize[1];
  804. srcV += s->current_picture_ptr->f.linesize[2];
  805. }
  806. off = 0;
  807. }
  808. if (v->rangeredfrm || (v->mv_mode == MV_PMODE_INTENSITY_COMP)
  809. || s->h_edge_pos < 18 || v_edge_pos < 18
  810. || (unsigned)uvsrc_x > (s->h_edge_pos >> 1) - 9
  811. || (unsigned)uvsrc_y > (v_edge_pos >> 1) - 9) {
  812. s->vdsp.emulated_edge_mc(s->edge_emu_buffer , srcU, s->uvlinesize,
  813. 8 + 1, 8 + 1, uvsrc_x, uvsrc_y,
  814. s->h_edge_pos >> 1, v_edge_pos >> 1);
  815. s->vdsp.emulated_edge_mc(s->edge_emu_buffer + 16, srcV, s->uvlinesize,
  816. 8 + 1, 8 + 1, uvsrc_x, uvsrc_y,
  817. s->h_edge_pos >> 1, v_edge_pos >> 1);
  818. srcU = s->edge_emu_buffer;
  819. srcV = s->edge_emu_buffer + 16;
  820. /* if we deal with range reduction we need to scale source blocks */
  821. if (v->rangeredfrm) {
  822. int i, j;
  823. uint8_t *src, *src2;
  824. src = srcU;
  825. src2 = srcV;
  826. for (j = 0; j < 9; j++) {
  827. for (i = 0; i < 9; i++) {
  828. src[i] = ((src[i] - 128) >> 1) + 128;
  829. src2[i] = ((src2[i] - 128) >> 1) + 128;
  830. }
  831. src += s->uvlinesize;
  832. src2 += s->uvlinesize;
  833. }
  834. }
  835. /* if we deal with intensity compensation we need to scale source blocks */
  836. if (v->mv_mode == MV_PMODE_INTENSITY_COMP) {
  837. int i, j;
  838. uint8_t *src, *src2;
  839. src = srcU;
  840. src2 = srcV;
  841. for (j = 0; j < 9; j++) {
  842. for (i = 0; i < 9; i++) {
  843. src[i] = v->lutuv[src[i]];
  844. src2[i] = v->lutuv[src2[i]];
  845. }
  846. src += s->uvlinesize;
  847. src2 += s->uvlinesize;
  848. }
  849. }
  850. }
  851. /* Chroma MC always uses qpel bilinear */
  852. uvmx = (uvmx & 3) << 1;
  853. uvmy = (uvmy & 3) << 1;
  854. if (!v->rnd) {
  855. h264chroma->put_h264_chroma_pixels_tab[0](s->dest[1] + off, srcU, s->uvlinesize, 8, uvmx, uvmy);
  856. h264chroma->put_h264_chroma_pixels_tab[0](s->dest[2] + off, srcV, s->uvlinesize, 8, uvmx, uvmy);
  857. } else {
  858. v->vc1dsp.put_no_rnd_vc1_chroma_pixels_tab[0](s->dest[1] + off, srcU, s->uvlinesize, 8, uvmx, uvmy);
  859. v->vc1dsp.put_no_rnd_vc1_chroma_pixels_tab[0](s->dest[2] + off, srcV, s->uvlinesize, 8, uvmx, uvmy);
  860. }
  861. }
  862. /** Do motion compensation for 4-MV field chroma macroblock (both U and V)
  863. */
  864. static void vc1_mc_4mv_chroma4(VC1Context *v)
  865. {
  866. MpegEncContext *s = &v->s;
  867. H264ChromaContext *h264chroma = &v->h264chroma;
  868. uint8_t *srcU, *srcV;
  869. int uvsrc_x, uvsrc_y;
  870. int uvmx_field[4], uvmy_field[4];
  871. int i, off, tx, ty;
  872. int fieldmv = v->blk_mv_type[s->block_index[0]];
  873. static const int s_rndtblfield[16] = { 0, 0, 1, 2, 4, 4, 5, 6, 2, 2, 3, 8, 6, 6, 7, 12 };
  874. int v_dist = fieldmv ? 1 : 4; // vertical offset for lower sub-blocks
  875. int v_edge_pos = s->v_edge_pos >> 1;
  876. if (!v->s.last_picture.f.data[0])
  877. return;
  878. if (s->flags & CODEC_FLAG_GRAY)
  879. return;
  880. for (i = 0; i < 4; i++) {
  881. tx = s->mv[0][i][0];
  882. uvmx_field[i] = (tx + ((tx & 3) == 3)) >> 1;
  883. ty = s->mv[0][i][1];
  884. if (fieldmv)
  885. uvmy_field[i] = (ty >> 4) * 8 + s_rndtblfield[ty & 0xF];
  886. else
  887. uvmy_field[i] = (ty + ((ty & 3) == 3)) >> 1;
  888. }
  889. for (i = 0; i < 4; i++) {
  890. off = (i & 1) * 4 + ((i & 2) ? v_dist * s->uvlinesize : 0);
  891. uvsrc_x = s->mb_x * 8 + (i & 1) * 4 + (uvmx_field[i] >> 2);
  892. uvsrc_y = s->mb_y * 8 + ((i & 2) ? v_dist : 0) + (uvmy_field[i] >> 2);
  893. // FIXME: implement proper pull-back (see vc1cropmv.c, vc1CROPMV_ChromaPullBack())
  894. uvsrc_x = av_clip(uvsrc_x, -8, s->avctx->coded_width >> 1);
  895. uvsrc_y = av_clip(uvsrc_y, -8, s->avctx->coded_height >> 1);
  896. srcU = s->last_picture.f.data[1] + uvsrc_y * s->uvlinesize + uvsrc_x;
  897. srcV = s->last_picture.f.data[2] + uvsrc_y * s->uvlinesize + uvsrc_x;
  898. uvmx_field[i] = (uvmx_field[i] & 3) << 1;
  899. uvmy_field[i] = (uvmy_field[i] & 3) << 1;
  900. if (fieldmv && !(uvsrc_y & 1))
  901. v_edge_pos = (s->v_edge_pos >> 1) - 1;
  902. if (fieldmv && (uvsrc_y & 1) && uvsrc_y < 2)
  903. uvsrc_y--;
  904. if ((v->mv_mode == MV_PMODE_INTENSITY_COMP)
  905. || s->h_edge_pos < 10 || v_edge_pos < (5 << fieldmv)
  906. || (unsigned)uvsrc_x > (s->h_edge_pos >> 1) - 5
  907. || (unsigned)uvsrc_y > v_edge_pos - (5 << fieldmv)) {
  908. s->vdsp.emulated_edge_mc(s->edge_emu_buffer, srcU, s->uvlinesize,
  909. 5, (5 << fieldmv), uvsrc_x, uvsrc_y,
  910. s->h_edge_pos >> 1, v_edge_pos);
  911. s->vdsp.emulated_edge_mc(s->edge_emu_buffer + 16, srcV, s->uvlinesize,
  912. 5, (5 << fieldmv), uvsrc_x, uvsrc_y,
  913. s->h_edge_pos >> 1, v_edge_pos);
  914. srcU = s->edge_emu_buffer;
  915. srcV = s->edge_emu_buffer + 16;
  916. /* if we deal with intensity compensation we need to scale source blocks */
  917. if (v->mv_mode == MV_PMODE_INTENSITY_COMP) {
  918. int i, j;
  919. uint8_t *src, *src2;
  920. src = srcU;
  921. src2 = srcV;
  922. for (j = 0; j < 5; j++) {
  923. for (i = 0; i < 5; i++) {
  924. src[i] = v->lutuv[src[i]];
  925. src2[i] = v->lutuv[src2[i]];
  926. }
  927. src += s->uvlinesize << 1;
  928. src2 += s->uvlinesize << 1;
  929. }
  930. }
  931. }
  932. if (!v->rnd) {
  933. h264chroma->put_h264_chroma_pixels_tab[1](s->dest[1] + off, srcU, s->uvlinesize << fieldmv, 4, uvmx_field[i], uvmy_field[i]);
  934. h264chroma->put_h264_chroma_pixels_tab[1](s->dest[2] + off, srcV, s->uvlinesize << fieldmv, 4, uvmx_field[i], uvmy_field[i]);
  935. } else {
  936. v->vc1dsp.put_no_rnd_vc1_chroma_pixels_tab[1](s->dest[1] + off, srcU, s->uvlinesize << fieldmv, 4, uvmx_field[i], uvmy_field[i]);
  937. v->vc1dsp.put_no_rnd_vc1_chroma_pixels_tab[1](s->dest[2] + off, srcV, s->uvlinesize << fieldmv, 4, uvmx_field[i], uvmy_field[i]);
  938. }
  939. }
  940. }
  941. /***********************************************************************/
  942. /**
  943. * @name VC-1 Block-level functions
  944. * @see 7.1.4, p91 and 8.1.1.7, p(1)04
  945. * @{
  946. */
  947. /**
  948. * @def GET_MQUANT
  949. * @brief Get macroblock-level quantizer scale
  950. */
  951. #define GET_MQUANT() \
  952. if (v->dquantfrm) { \
  953. int edges = 0; \
  954. if (v->dqprofile == DQPROFILE_ALL_MBS) { \
  955. if (v->dqbilevel) { \
  956. mquant = (get_bits1(gb)) ? v->altpq : v->pq; \
  957. } else { \
  958. mqdiff = get_bits(gb, 3); \
  959. if (mqdiff != 7) \
  960. mquant = v->pq + mqdiff; \
  961. else \
  962. mquant = get_bits(gb, 5); \
  963. } \
  964. } \
  965. if (v->dqprofile == DQPROFILE_SINGLE_EDGE) \
  966. edges = 1 << v->dqsbedge; \
  967. else if (v->dqprofile == DQPROFILE_DOUBLE_EDGES) \
  968. edges = (3 << v->dqsbedge) % 15; \
  969. else if (v->dqprofile == DQPROFILE_FOUR_EDGES) \
  970. edges = 15; \
  971. if ((edges&1) && !s->mb_x) \
  972. mquant = v->altpq; \
  973. if ((edges&2) && s->first_slice_line) \
  974. mquant = v->altpq; \
  975. if ((edges&4) && s->mb_x == (s->mb_width - 1)) \
  976. mquant = v->altpq; \
  977. if ((edges&8) && s->mb_y == (s->mb_height - 1)) \
  978. mquant = v->altpq; \
  979. if (!mquant || mquant > 31) { \
  980. av_log(v->s.avctx, AV_LOG_ERROR, \
  981. "Overriding invalid mquant %d\n", mquant); \
  982. mquant = 1; \
  983. } \
  984. }
  985. /**
  986. * @def GET_MVDATA(_dmv_x, _dmv_y)
  987. * @brief Get MV differentials
  988. * @see MVDATA decoding from 8.3.5.2, p(1)20
  989. * @param _dmv_x Horizontal differential for decoded MV
  990. * @param _dmv_y Vertical differential for decoded MV
  991. */
  992. #define GET_MVDATA(_dmv_x, _dmv_y) \
  993. index = 1 + get_vlc2(gb, ff_vc1_mv_diff_vlc[s->mv_table_index].table, \
  994. VC1_MV_DIFF_VLC_BITS, 2); \
  995. if (index > 36) { \
  996. mb_has_coeffs = 1; \
  997. index -= 37; \
  998. } else \
  999. mb_has_coeffs = 0; \
  1000. s->mb_intra = 0; \
  1001. if (!index) { \
  1002. _dmv_x = _dmv_y = 0; \
  1003. } else if (index == 35) { \
  1004. _dmv_x = get_bits(gb, v->k_x - 1 + s->quarter_sample); \
  1005. _dmv_y = get_bits(gb, v->k_y - 1 + s->quarter_sample); \
  1006. } else if (index == 36) { \
  1007. _dmv_x = 0; \
  1008. _dmv_y = 0; \
  1009. s->mb_intra = 1; \
  1010. } else { \
  1011. index1 = index % 6; \
  1012. if (!s->quarter_sample && index1 == 5) val = 1; \
  1013. else val = 0; \
  1014. if (size_table[index1] - val > 0) \
  1015. val = get_bits(gb, size_table[index1] - val); \
  1016. else val = 0; \
  1017. sign = 0 - (val&1); \
  1018. _dmv_x = (sign ^ ((val>>1) + offset_table[index1])) - sign; \
  1019. \
  1020. index1 = index / 6; \
  1021. if (!s->quarter_sample && index1 == 5) val = 1; \
  1022. else val = 0; \
  1023. if (size_table[index1] - val > 0) \
  1024. val = get_bits(gb, size_table[index1] - val); \
  1025. else val = 0; \
  1026. sign = 0 - (val & 1); \
  1027. _dmv_y = (sign ^ ((val >> 1) + offset_table[index1])) - sign; \
  1028. }
  1029. static av_always_inline void get_mvdata_interlaced(VC1Context *v, int *dmv_x,
  1030. int *dmv_y, int *pred_flag)
  1031. {
  1032. int index, index1;
  1033. int extend_x = 0, extend_y = 0;
  1034. GetBitContext *gb = &v->s.gb;
  1035. int bits, esc;
  1036. int val, sign;
  1037. const int* offs_tab;
  1038. if (v->numref) {
  1039. bits = VC1_2REF_MVDATA_VLC_BITS;
  1040. esc = 125;
  1041. } else {
  1042. bits = VC1_1REF_MVDATA_VLC_BITS;
  1043. esc = 71;
  1044. }
  1045. switch (v->dmvrange) {
  1046. case 1:
  1047. extend_x = 1;
  1048. break;
  1049. case 2:
  1050. extend_y = 1;
  1051. break;
  1052. case 3:
  1053. extend_x = extend_y = 1;
  1054. break;
  1055. }
  1056. index = get_vlc2(gb, v->imv_vlc->table, bits, 3);
  1057. if (index == esc) {
  1058. *dmv_x = get_bits(gb, v->k_x);
  1059. *dmv_y = get_bits(gb, v->k_y);
  1060. if (v->numref) {
  1061. if (pred_flag) {
  1062. *pred_flag = *dmv_y & 1;
  1063. *dmv_y = (*dmv_y + *pred_flag) >> 1;
  1064. } else {
  1065. *dmv_y = (*dmv_y + (*dmv_y & 1)) >> 1;
  1066. }
  1067. }
  1068. }
  1069. else {
  1070. av_assert0(index < esc);
  1071. if (extend_x)
  1072. offs_tab = offset_table2;
  1073. else
  1074. offs_tab = offset_table1;
  1075. index1 = (index + 1) % 9;
  1076. if (index1 != 0) {
  1077. val = get_bits(gb, index1 + extend_x);
  1078. sign = 0 -(val & 1);
  1079. *dmv_x = (sign ^ ((val >> 1) + offs_tab[index1])) - sign;
  1080. } else
  1081. *dmv_x = 0;
  1082. if (extend_y)
  1083. offs_tab = offset_table2;
  1084. else
  1085. offs_tab = offset_table1;
  1086. index1 = (index + 1) / 9;
  1087. if (index1 > v->numref) {
  1088. val = get_bits(gb, (index1 + (extend_y << v->numref)) >> v->numref);
  1089. sign = 0 - (val & 1);
  1090. *dmv_y = (sign ^ ((val >> 1) + offs_tab[index1 >> v->numref])) - sign;
  1091. } else
  1092. *dmv_y = 0;
  1093. if (v->numref && pred_flag)
  1094. *pred_flag = index1 & 1;
  1095. }
  1096. }
  1097. static av_always_inline int scaleforsame_x(VC1Context *v, int n /* MV */, int dir)
  1098. {
  1099. int scaledvalue, refdist;
  1100. int scalesame1, scalesame2;
  1101. int scalezone1_x, zone1offset_x;
  1102. int table_index = dir ^ v->second_field;
  1103. if (v->s.pict_type != AV_PICTURE_TYPE_B)
  1104. refdist = v->refdist;
  1105. else
  1106. refdist = dir ? v->brfd : v->frfd;
  1107. if (refdist > 3)
  1108. refdist = 3;
  1109. scalesame1 = ff_vc1_field_mvpred_scales[table_index][1][refdist];
  1110. scalesame2 = ff_vc1_field_mvpred_scales[table_index][2][refdist];
  1111. scalezone1_x = ff_vc1_field_mvpred_scales[table_index][3][refdist];
  1112. zone1offset_x = ff_vc1_field_mvpred_scales[table_index][5][refdist];
  1113. if (FFABS(n) > 255)
  1114. scaledvalue = n;
  1115. else {
  1116. if (FFABS(n) < scalezone1_x)
  1117. scaledvalue = (n * scalesame1) >> 8;
  1118. else {
  1119. if (n < 0)
  1120. scaledvalue = ((n * scalesame2) >> 8) - zone1offset_x;
  1121. else
  1122. scaledvalue = ((n * scalesame2) >> 8) + zone1offset_x;
  1123. }
  1124. }
  1125. return av_clip(scaledvalue, -v->range_x, v->range_x - 1);
  1126. }
  1127. static av_always_inline int scaleforsame_y(VC1Context *v, int i, int n /* MV */, int dir)
  1128. {
  1129. int scaledvalue, refdist;
  1130. int scalesame1, scalesame2;
  1131. int scalezone1_y, zone1offset_y;
  1132. int table_index = dir ^ v->second_field;
  1133. if (v->s.pict_type != AV_PICTURE_TYPE_B)
  1134. refdist = v->refdist;
  1135. else
  1136. refdist = dir ? v->brfd : v->frfd;
  1137. if (refdist > 3)
  1138. refdist = 3;
  1139. scalesame1 = ff_vc1_field_mvpred_scales[table_index][1][refdist];
  1140. scalesame2 = ff_vc1_field_mvpred_scales[table_index][2][refdist];
  1141. scalezone1_y = ff_vc1_field_mvpred_scales[table_index][4][refdist];
  1142. zone1offset_y = ff_vc1_field_mvpred_scales[table_index][6][refdist];
  1143. if (FFABS(n) > 63)
  1144. scaledvalue = n;
  1145. else {
  1146. if (FFABS(n) < scalezone1_y)
  1147. scaledvalue = (n * scalesame1) >> 8;
  1148. else {
  1149. if (n < 0)
  1150. scaledvalue = ((n * scalesame2) >> 8) - zone1offset_y;
  1151. else
  1152. scaledvalue = ((n * scalesame2) >> 8) + zone1offset_y;
  1153. }
  1154. }
  1155. if (v->cur_field_type && !v->ref_field_type[dir])
  1156. return av_clip(scaledvalue, -v->range_y / 2 + 1, v->range_y / 2);
  1157. else
  1158. return av_clip(scaledvalue, -v->range_y / 2, v->range_y / 2 - 1);
  1159. }
  1160. static av_always_inline int scaleforopp_x(VC1Context *v, int n /* MV */)
  1161. {
  1162. int scalezone1_x, zone1offset_x;
  1163. int scaleopp1, scaleopp2, brfd;
  1164. int scaledvalue;
  1165. brfd = FFMIN(v->brfd, 3);
  1166. scalezone1_x = ff_vc1_b_field_mvpred_scales[3][brfd];
  1167. zone1offset_x = ff_vc1_b_field_mvpred_scales[5][brfd];
  1168. scaleopp1 = ff_vc1_b_field_mvpred_scales[1][brfd];
  1169. scaleopp2 = ff_vc1_b_field_mvpred_scales[2][brfd];
  1170. if (FFABS(n) > 255)
  1171. scaledvalue = n;
  1172. else {
  1173. if (FFABS(n) < scalezone1_x)
  1174. scaledvalue = (n * scaleopp1) >> 8;
  1175. else {
  1176. if (n < 0)
  1177. scaledvalue = ((n * scaleopp2) >> 8) - zone1offset_x;
  1178. else
  1179. scaledvalue = ((n * scaleopp2) >> 8) + zone1offset_x;
  1180. }
  1181. }
  1182. return av_clip(scaledvalue, -v->range_x, v->range_x - 1);
  1183. }
  1184. static av_always_inline int scaleforopp_y(VC1Context *v, int n /* MV */, int dir)
  1185. {
  1186. int scalezone1_y, zone1offset_y;
  1187. int scaleopp1, scaleopp2, brfd;
  1188. int scaledvalue;
  1189. brfd = FFMIN(v->brfd, 3);
  1190. scalezone1_y = ff_vc1_b_field_mvpred_scales[4][brfd];
  1191. zone1offset_y = ff_vc1_b_field_mvpred_scales[6][brfd];
  1192. scaleopp1 = ff_vc1_b_field_mvpred_scales[1][brfd];
  1193. scaleopp2 = ff_vc1_b_field_mvpred_scales[2][brfd];
  1194. if (FFABS(n) > 63)
  1195. scaledvalue = n;
  1196. else {
  1197. if (FFABS(n) < scalezone1_y)
  1198. scaledvalue = (n * scaleopp1) >> 8;
  1199. else {
  1200. if (n < 0)
  1201. scaledvalue = ((n * scaleopp2) >> 8) - zone1offset_y;
  1202. else
  1203. scaledvalue = ((n * scaleopp2) >> 8) + zone1offset_y;
  1204. }
  1205. }
  1206. if (v->cur_field_type && !v->ref_field_type[dir]) {
  1207. return av_clip(scaledvalue, -v->range_y / 2 + 1, v->range_y / 2);
  1208. } else {
  1209. return av_clip(scaledvalue, -v->range_y / 2, v->range_y / 2 - 1);
  1210. }
  1211. }
  1212. static av_always_inline int scaleforsame(VC1Context *v, int i, int n /* MV */,
  1213. int dim, int dir)
  1214. {
  1215. int brfd, scalesame;
  1216. int hpel = 1 - v->s.quarter_sample;
  1217. n >>= hpel;
  1218. if (v->s.pict_type != AV_PICTURE_TYPE_B || v->second_field || !dir) {
  1219. if (dim)
  1220. n = scaleforsame_y(v, i, n, dir) << hpel;
  1221. else
  1222. n = scaleforsame_x(v, n, dir) << hpel;
  1223. return n;
  1224. }
  1225. brfd = FFMIN(v->brfd, 3);
  1226. scalesame = ff_vc1_b_field_mvpred_scales[0][brfd];
  1227. n = (n * scalesame >> 8) << hpel;
  1228. return n;
  1229. }
  1230. static av_always_inline int scaleforopp(VC1Context *v, int n /* MV */,
  1231. int dim, int dir)
  1232. {
  1233. int refdist, scaleopp;
  1234. int hpel = 1 - v->s.quarter_sample;
  1235. n >>= hpel;
  1236. if (v->s.pict_type == AV_PICTURE_TYPE_B && !v->second_field && dir == 1) {
  1237. if (dim)
  1238. n = scaleforopp_y(v, n, dir) << hpel;
  1239. else
  1240. n = scaleforopp_x(v, n) << hpel;
  1241. return n;
  1242. }
  1243. if (v->s.pict_type != AV_PICTURE_TYPE_B)
  1244. refdist = FFMIN(v->refdist, 3);
  1245. else
  1246. refdist = dir ? v->brfd : v->frfd;
  1247. scaleopp = ff_vc1_field_mvpred_scales[dir ^ v->second_field][0][refdist];
  1248. n = (n * scaleopp >> 8) << hpel;
  1249. return n;
  1250. }
  1251. /** Predict and set motion vector
  1252. */
  1253. static inline void vc1_pred_mv(VC1Context *v, int n, int dmv_x, int dmv_y,
  1254. int mv1, int r_x, int r_y, uint8_t* is_intra,
  1255. int pred_flag, int dir)
  1256. {
  1257. MpegEncContext *s = &v->s;
  1258. int xy, wrap, off = 0;
  1259. int16_t *A, *B, *C;
  1260. int px, py;
  1261. int sum;
  1262. int mixedmv_pic, num_samefield = 0, num_oppfield = 0;
  1263. int opposite, a_f, b_f, c_f;
  1264. int16_t field_predA[2];
  1265. int16_t field_predB[2];
  1266. int16_t field_predC[2];
  1267. int a_valid, b_valid, c_valid;
  1268. int hybridmv_thresh, y_bias = 0;
  1269. if (v->mv_mode == MV_PMODE_MIXED_MV ||
  1270. ((v->mv_mode == MV_PMODE_INTENSITY_COMP) && (v->mv_mode2 == MV_PMODE_MIXED_MV)))
  1271. mixedmv_pic = 1;
  1272. else
  1273. mixedmv_pic = 0;
  1274. /* scale MV difference to be quad-pel */
  1275. dmv_x <<= 1 - s->quarter_sample;
  1276. dmv_y <<= 1 - s->quarter_sample;
  1277. wrap = s->b8_stride;
  1278. xy = s->block_index[n];
  1279. if (s->mb_intra) {
  1280. s->mv[0][n][0] = s->current_picture.f.motion_val[0][xy + v->blocks_off][0] = 0;
  1281. s->mv[0][n][1] = s->current_picture.f.motion_val[0][xy + v->blocks_off][1] = 0;
  1282. s->current_picture.f.motion_val[1][xy + v->blocks_off][0] = 0;
  1283. s->current_picture.f.motion_val[1][xy + v->blocks_off][1] = 0;
  1284. if (mv1) { /* duplicate motion data for 1-MV block */
  1285. s->current_picture.f.motion_val[0][xy + 1 + v->blocks_off][0] = 0;
  1286. s->current_picture.f.motion_val[0][xy + 1 + v->blocks_off][1] = 0;
  1287. s->current_picture.f.motion_val[0][xy + wrap + v->blocks_off][0] = 0;
  1288. s->current_picture.f.motion_val[0][xy + wrap + v->blocks_off][1] = 0;
  1289. s->current_picture.f.motion_val[0][xy + wrap + 1 + v->blocks_off][0] = 0;
  1290. s->current_picture.f.motion_val[0][xy + wrap + 1 + v->blocks_off][1] = 0;
  1291. v->luma_mv[s->mb_x][0] = v->luma_mv[s->mb_x][1] = 0;
  1292. s->current_picture.f.motion_val[1][xy + 1 + v->blocks_off][0] = 0;
  1293. s->current_picture.f.motion_val[1][xy + 1 + v->blocks_off][1] = 0;
  1294. s->current_picture.f.motion_val[1][xy + wrap][0] = 0;
  1295. s->current_picture.f.motion_val[1][xy + wrap + v->blocks_off][1] = 0;
  1296. s->current_picture.f.motion_val[1][xy + wrap + 1 + v->blocks_off][0] = 0;
  1297. s->current_picture.f.motion_val[1][xy + wrap + 1 + v->blocks_off][1] = 0;
  1298. }
  1299. return;
  1300. }
  1301. C = s->current_picture.f.motion_val[dir][xy - 1 + v->blocks_off];
  1302. A = s->current_picture.f.motion_val[dir][xy - wrap + v->blocks_off];
  1303. if (mv1) {
  1304. if (v->field_mode && mixedmv_pic)
  1305. off = (s->mb_x == (s->mb_width - 1)) ? -2 : 2;
  1306. else
  1307. off = (s->mb_x == (s->mb_width - 1)) ? -1 : 2;
  1308. } else {
  1309. //in 4-MV mode different blocks have different B predictor position
  1310. switch (n) {
  1311. case 0:
  1312. off = (s->mb_x > 0) ? -1 : 1;
  1313. break;
  1314. case 1:
  1315. off = (s->mb_x == (s->mb_width - 1)) ? -1 : 1;
  1316. break;
  1317. case 2:
  1318. off = 1;
  1319. break;
  1320. case 3:
  1321. off = -1;
  1322. }
  1323. }
  1324. B = s->current_picture.f.motion_val[dir][xy - wrap + off + v->blocks_off];
  1325. a_valid = !s->first_slice_line || (n == 2 || n == 3);
  1326. b_valid = a_valid && (s->mb_width > 1);
  1327. c_valid = s->mb_x || (n == 1 || n == 3);
  1328. if (v->field_mode) {
  1329. a_valid = a_valid && !is_intra[xy - wrap];
  1330. b_valid = b_valid && !is_intra[xy - wrap + off];
  1331. c_valid = c_valid && !is_intra[xy - 1];
  1332. }
  1333. if (a_valid) {
  1334. a_f = v->mv_f[dir][xy - wrap + v->blocks_off];
  1335. num_oppfield += a_f;
  1336. num_samefield += 1 - a_f;
  1337. field_predA[0] = A[0];
  1338. field_predA[1] = A[1];
  1339. } else {
  1340. field_predA[0] = field_predA[1] = 0;
  1341. a_f = 0;
  1342. }
  1343. if (b_valid) {
  1344. b_f = v->mv_f[dir][xy - wrap + off + v->blocks_off];
  1345. num_oppfield += b_f;
  1346. num_samefield += 1 - b_f;
  1347. field_predB[0] = B[0];
  1348. field_predB[1] = B[1];
  1349. } else {
  1350. field_predB[0] = field_predB[1] = 0;
  1351. b_f = 0;
  1352. }
  1353. if (c_valid) {
  1354. c_f = v->mv_f[dir][xy - 1 + v->blocks_off];
  1355. num_oppfield += c_f;
  1356. num_samefield += 1 - c_f;
  1357. field_predC[0] = C[0];
  1358. field_predC[1] = C[1];
  1359. } else {
  1360. field_predC[0] = field_predC[1] = 0;
  1361. c_f = 0;
  1362. }
  1363. if (v->field_mode) {
  1364. if (!v->numref)
  1365. // REFFIELD determines if the last field or the second-last field is
  1366. // to be used as reference
  1367. opposite = 1 - v->reffield;
  1368. else {
  1369. if (num_samefield <= num_oppfield)
  1370. opposite = 1 - pred_flag;
  1371. else
  1372. opposite = pred_flag;
  1373. }
  1374. } else
  1375. opposite = 0;
  1376. if (opposite) {
  1377. if (a_valid && !a_f) {
  1378. field_predA[0] = scaleforopp(v, field_predA[0], 0, dir);
  1379. field_predA[1] = scaleforopp(v, field_predA[1], 1, dir);
  1380. }
  1381. if (b_valid && !b_f) {
  1382. field_predB[0] = scaleforopp(v, field_predB[0], 0, dir);
  1383. field_predB[1] = scaleforopp(v, field_predB[1], 1, dir);
  1384. }
  1385. if (c_valid && !c_f) {
  1386. field_predC[0] = scaleforopp(v, field_predC[0], 0, dir);
  1387. field_predC[1] = scaleforopp(v, field_predC[1], 1, dir);
  1388. }
  1389. v->mv_f[dir][xy + v->blocks_off] = 1;
  1390. v->ref_field_type[dir] = !v->cur_field_type;
  1391. } else {
  1392. if (a_valid && a_f) {
  1393. field_predA[0] = scaleforsame(v, n, field_predA[0], 0, dir);
  1394. field_predA[1] = scaleforsame(v, n, field_predA[1], 1, dir);
  1395. }
  1396. if (b_valid && b_f) {
  1397. field_predB[0] = scaleforsame(v, n, field_predB[0], 0, dir);
  1398. field_predB[1] = scaleforsame(v, n, field_predB[1], 1, dir);
  1399. }
  1400. if (c_valid && c_f) {
  1401. field_predC[0] = scaleforsame(v, n, field_predC[0], 0, dir);
  1402. field_predC[1] = scaleforsame(v, n, field_predC[1], 1, dir);
  1403. }
  1404. v->mv_f[dir][xy + v->blocks_off] = 0;
  1405. v->ref_field_type[dir] = v->cur_field_type;
  1406. }
  1407. if (a_valid) {
  1408. px = field_predA[0];
  1409. py = field_predA[1];
  1410. } else if (c_valid) {
  1411. px = field_predC[0];
  1412. py = field_predC[1];
  1413. } else if (b_valid) {
  1414. px = field_predB[0];
  1415. py = field_predB[1];
  1416. } else {
  1417. px = 0;
  1418. py = 0;
  1419. }
  1420. if (num_samefield + num_oppfield > 1) {
  1421. px = mid_pred(field_predA[0], field_predB[0], field_predC[0]);
  1422. py = mid_pred(field_predA[1], field_predB[1], field_predC[1]);
  1423. }
  1424. /* Pullback MV as specified in 8.3.5.3.4 */
  1425. if (!v->field_mode) {
  1426. int qx, qy, X, Y;
  1427. qx = (s->mb_x << 6) + ((n == 1 || n == 3) ? 32 : 0);
  1428. qy = (s->mb_y << 6) + ((n == 2 || n == 3) ? 32 : 0);
  1429. X = (s->mb_width << 6) - 4;
  1430. Y = (s->mb_height << 6) - 4;
  1431. if (mv1) {
  1432. if (qx + px < -60) px = -60 - qx;
  1433. if (qy + py < -60) py = -60 - qy;
  1434. } else {
  1435. if (qx + px < -28) px = -28 - qx;
  1436. if (qy + py < -28) py = -28 - qy;
  1437. }
  1438. if (qx + px > X) px = X - qx;
  1439. if (qy + py > Y) py = Y - qy;
  1440. }
  1441. if (!v->field_mode || s->pict_type != AV_PICTURE_TYPE_B) {
  1442. /* Calculate hybrid prediction as specified in 8.3.5.3.5 (also 10.3.5.4.3.5) */
  1443. hybridmv_thresh = 32;
  1444. if (a_valid && c_valid) {
  1445. if (is_intra[xy - wrap])
  1446. sum = FFABS(px) + FFABS(py);
  1447. else
  1448. sum = FFABS(px - field_predA[0]) + FFABS(py - field_predA[1]);
  1449. if (sum > hybridmv_thresh) {
  1450. if (get_bits1(&s->gb)) { // read HYBRIDPRED bit
  1451. px = field_predA[0];
  1452. py = field_predA[1];
  1453. } else {
  1454. px = field_predC[0];
  1455. py = field_predC[1];
  1456. }
  1457. } else {
  1458. if (is_intra[xy - 1])
  1459. sum = FFABS(px) + FFABS(py);
  1460. else
  1461. sum = FFABS(px - field_predC[0]) + FFABS(py - field_predC[1]);
  1462. if (sum > hybridmv_thresh) {
  1463. if (get_bits1(&s->gb)) {
  1464. px = field_predA[0];
  1465. py = field_predA[1];
  1466. } else {
  1467. px = field_predC[0];
  1468. py = field_predC[1];
  1469. }
  1470. }
  1471. }
  1472. }
  1473. }
  1474. if (v->field_mode && v->numref)
  1475. r_y >>= 1;
  1476. if (v->field_mode && v->cur_field_type && v->ref_field_type[dir] == 0)
  1477. y_bias = 1;
  1478. /* store MV using signed modulus of MV range defined in 4.11 */
  1479. s->mv[dir][n][0] = s->current_picture.f.motion_val[dir][xy + v->blocks_off][0] = ((px + dmv_x + r_x) & ((r_x << 1) - 1)) - r_x;
  1480. s->mv[dir][n][1] = s->current_picture.f.motion_val[dir][xy + v->blocks_off][1] = ((py + dmv_y + r_y - y_bias) & ((r_y << 1) - 1)) - r_y + y_bias;
  1481. if (mv1) { /* duplicate motion data for 1-MV block */
  1482. s->current_picture.f.motion_val[dir][xy + 1 + v->blocks_off][0] = s->current_picture.f.motion_val[dir][xy + v->blocks_off][0];
  1483. s->current_picture.f.motion_val[dir][xy + 1 + v->blocks_off][1] = s->current_picture.f.motion_val[dir][xy + v->blocks_off][1];
  1484. s->current_picture.f.motion_val[dir][xy + wrap + v->blocks_off][0] = s->current_picture.f.motion_val[dir][xy + v->blocks_off][0];
  1485. s->current_picture.f.motion_val[dir][xy + wrap + v->blocks_off][1] = s->current_picture.f.motion_val[dir][xy + v->blocks_off][1];
  1486. s->current_picture.f.motion_val[dir][xy + wrap + 1 + v->blocks_off][0] = s->current_picture.f.motion_val[dir][xy + v->blocks_off][0];
  1487. s->current_picture.f.motion_val[dir][xy + wrap + 1 + v->blocks_off][1] = s->current_picture.f.motion_val[dir][xy + v->blocks_off][1];
  1488. v->mv_f[dir][xy + 1 + v->blocks_off] = v->mv_f[dir][xy + v->blocks_off];
  1489. v->mv_f[dir][xy + wrap + v->blocks_off] = v->mv_f[dir][xy + wrap + 1 + v->blocks_off] = v->mv_f[dir][xy + v->blocks_off];
  1490. }
  1491. }
  1492. /** Predict and set motion vector for interlaced frame picture MBs
  1493. */
  1494. static inline void vc1_pred_mv_intfr(VC1Context *v, int n, int dmv_x, int dmv_y,
  1495. int mvn, int r_x, int r_y, uint8_t* is_intra)
  1496. {
  1497. MpegEncContext *s = &v->s;
  1498. int xy, wrap, off = 0;
  1499. int A[2], B[2], C[2];
  1500. int px, py;
  1501. int a_valid = 0, b_valid = 0, c_valid = 0;
  1502. int field_a, field_b, field_c; // 0: same, 1: opposit
  1503. int total_valid, num_samefield, num_oppfield;
  1504. int pos_c, pos_b, n_adj;
  1505. wrap = s->b8_stride;
  1506. xy = s->block_index[n];
  1507. if (s->mb_intra) {
  1508. s->mv[0][n][0] = s->current_picture.f.motion_val[0][xy][0] = 0;
  1509. s->mv[0][n][1] = s->current_picture.f.motion_val[0][xy][1] = 0;
  1510. s->current_picture.f.motion_val[1][xy][0] = 0;
  1511. s->current_picture.f.motion_val[1][xy][1] = 0;
  1512. if (mvn == 1) { /* duplicate motion data for 1-MV block */
  1513. s->current_picture.f.motion_val[0][xy + 1][0] = 0;
  1514. s->current_picture.f.motion_val[0][xy + 1][1] = 0;
  1515. s->current_picture.f.motion_val[0][xy + wrap][0] = 0;
  1516. s->current_picture.f.motion_val[0][xy + wrap][1] = 0;
  1517. s->current_picture.f.motion_val[0][xy + wrap + 1][0] = 0;
  1518. s->current_picture.f.motion_val[0][xy + wrap + 1][1] = 0;
  1519. v->luma_mv[s->mb_x][0] = v->luma_mv[s->mb_x][1] = 0;
  1520. s->current_picture.f.motion_val[1][xy + 1][0] = 0;
  1521. s->current_picture.f.motion_val[1][xy + 1][1] = 0;
  1522. s->current_picture.f.motion_val[1][xy + wrap][0] = 0;
  1523. s->current_picture.f.motion_val[1][xy + wrap][1] = 0;
  1524. s->current_picture.f.motion_val[1][xy + wrap + 1][0] = 0;
  1525. s->current_picture.f.motion_val[1][xy + wrap + 1][1] = 0;
  1526. }
  1527. return;
  1528. }
  1529. off = ((n == 0) || (n == 1)) ? 1 : -1;
  1530. /* predict A */
  1531. if (s->mb_x || (n == 1) || (n == 3)) {
  1532. if ((v->blk_mv_type[xy]) // current block (MB) has a field MV
  1533. || (!v->blk_mv_type[xy] && !v->blk_mv_type[xy - 1])) { // or both have frame MV
  1534. A[0] = s->current_picture.f.motion_val[0][xy - 1][0];
  1535. A[1] = s->current_picture.f.motion_val[0][xy - 1][1];
  1536. a_valid = 1;
  1537. } else { // current block has frame mv and cand. has field MV (so average)
  1538. A[0] = (s->current_picture.f.motion_val[0][xy - 1][0]
  1539. + s->current_picture.f.motion_val[0][xy - 1 + off * wrap][0] + 1) >> 1;
  1540. A[1] = (s->current_picture.f.motion_val[0][xy - 1][1]
  1541. + s->current_picture.f.motion_val[0][xy - 1 + off * wrap][1] + 1) >> 1;
  1542. a_valid = 1;
  1543. }
  1544. if (!(n & 1) && v->is_intra[s->mb_x - 1]) {
  1545. a_valid = 0;
  1546. A[0] = A[1] = 0;
  1547. }
  1548. } else
  1549. A[0] = A[1] = 0;
  1550. /* Predict B and C */
  1551. B[0] = B[1] = C[0] = C[1] = 0;
  1552. if (n == 0 || n == 1 || v->blk_mv_type[xy]) {
  1553. if (!s->first_slice_line) {
  1554. if (!v->is_intra[s->mb_x - s->mb_stride]) {
  1555. b_valid = 1;
  1556. n_adj = n | 2;
  1557. pos_b = s->block_index[n_adj] - 2 * wrap;
  1558. if (v->blk_mv_type[pos_b] && v->blk_mv_type[xy]) {
  1559. n_adj = (n & 2) | (n & 1);
  1560. }
  1561. B[0] = s->current_picture.f.motion_val[0][s->block_index[n_adj] - 2 * wrap][0];
  1562. B[1] = s->current_picture.f.motion_val[0][s->block_index[n_adj] - 2 * wrap][1];
  1563. if (v->blk_mv_type[pos_b] && !v->blk_mv_type[xy]) {
  1564. B[0] = (B[0] + s->current_picture.f.motion_val[0][s->block_index[n_adj ^ 2] - 2 * wrap][0] + 1) >> 1;
  1565. B[1] = (B[1] + s->current_picture.f.motion_val[0][s->block_index[n_adj ^ 2] - 2 * wrap][1] + 1) >> 1;
  1566. }
  1567. }
  1568. if (s->mb_width > 1) {
  1569. if (!v->is_intra[s->mb_x - s->mb_stride + 1]) {
  1570. c_valid = 1;
  1571. n_adj = 2;
  1572. pos_c = s->block_index[2] - 2 * wrap + 2;
  1573. if (v->blk_mv_type[pos_c] && v->blk_mv_type[xy]) {
  1574. n_adj = n & 2;
  1575. }
  1576. C[0] = s->current_picture.f.motion_val[0][s->block_index[n_adj] - 2 * wrap + 2][0];
  1577. C[1] = s->current_picture.f.motion_val[0][s->block_index[n_adj] - 2 * wrap + 2][1];
  1578. if (v->blk_mv_type[pos_c] && !v->blk_mv_type[xy]) {
  1579. C[0] = (1 + C[0] + (s->current_picture.f.motion_val[0][s->block_index[n_adj ^ 2] - 2 * wrap + 2][0])) >> 1;
  1580. C[1] = (1 + C[1] + (s->current_picture.f.motion_val[0][s->block_index[n_adj ^ 2] - 2 * wrap + 2][1])) >> 1;
  1581. }
  1582. if (s->mb_x == s->mb_width - 1) {
  1583. if (!v->is_intra[s->mb_x - s->mb_stride - 1]) {
  1584. c_valid = 1;
  1585. n_adj = 3;
  1586. pos_c = s->block_index[3] - 2 * wrap - 2;
  1587. if (v->blk_mv_type[pos_c] && v->blk_mv_type[xy]) {
  1588. n_adj = n | 1;
  1589. }
  1590. C[0] = s->current_picture.f.motion_val[0][s->block_index[n_adj] - 2 * wrap - 2][0];
  1591. C[1] = s->current_picture.f.motion_val[0][s->block_index[n_adj] - 2 * wrap - 2][1];
  1592. if (v->blk_mv_type[pos_c] && !v->blk_mv_type[xy]) {
  1593. C[0] = (1 + C[0] + s->current_picture.f.motion_val[0][s->block_index[1] - 2 * wrap - 2][0]) >> 1;
  1594. C[1] = (1 + C[1] + s->current_picture.f.motion_val[0][s->block_index[1] - 2 * wrap - 2][1]) >> 1;
  1595. }
  1596. } else
  1597. c_valid = 0;
  1598. }
  1599. }
  1600. }
  1601. }
  1602. } else {
  1603. pos_b = s->block_index[1];
  1604. b_valid = 1;
  1605. B[0] = s->current_picture.f.motion_val[0][pos_b][0];
  1606. B[1] = s->current_picture.f.motion_val[0][pos_b][1];
  1607. pos_c = s->block_index[0];
  1608. c_valid = 1;
  1609. C[0] = s->current_picture.f.motion_val[0][pos_c][0];
  1610. C[1] = s->current_picture.f.motion_val[0][pos_c][1];
  1611. }
  1612. total_valid = a_valid + b_valid + c_valid;
  1613. // check if predictor A is out of bounds
  1614. if (!s->mb_x && !(n == 1 || n == 3)) {
  1615. A[0] = A[1] = 0;
  1616. }
  1617. // check if predictor B is out of bounds
  1618. if ((s->first_slice_line && v->blk_mv_type[xy]) || (s->first_slice_line && !(n & 2))) {
  1619. B[0] = B[1] = C[0] = C[1] = 0;
  1620. }
  1621. if (!v->blk_mv_type[xy]) {
  1622. if (s->mb_width == 1) {
  1623. px = B[0];
  1624. py = B[1];
  1625. } else {
  1626. if (total_valid >= 2) {
  1627. px = mid_pred(A[0], B[0], C[0]);
  1628. py = mid_pred(A[1], B[1], C[1]);
  1629. } else if (total_valid) {
  1630. if (a_valid) { px = A[0]; py = A[1]; }
  1631. else if (b_valid) { px = B[0]; py = B[1]; }
  1632. else if (c_valid) { px = C[0]; py = C[1]; }
  1633. else av_assert2(0);
  1634. } else
  1635. px = py = 0;
  1636. }
  1637. } else {
  1638. if (a_valid)
  1639. field_a = (A[1] & 4) ? 1 : 0;
  1640. else
  1641. field_a = 0;
  1642. if (b_valid)
  1643. field_b = (B[1] & 4) ? 1 : 0;
  1644. else
  1645. field_b = 0;
  1646. if (c_valid)
  1647. field_c = (C[1] & 4) ? 1 : 0;
  1648. else
  1649. field_c = 0;
  1650. num_oppfield = field_a + field_b + field_c;
  1651. num_samefield = total_valid - num_oppfield;
  1652. if (total_valid == 3) {
  1653. if ((num_samefield == 3) || (num_oppfield == 3)) {
  1654. px = mid_pred(A[0], B[0], C[0]);
  1655. py = mid_pred(A[1], B[1], C[1]);
  1656. } else if (num_samefield >= num_oppfield) {
  1657. /* take one MV from same field set depending on priority
  1658. the check for B may not be necessary */
  1659. px = !field_a ? A[0] : B[0];
  1660. py = !field_a ? A[1] : B[1];
  1661. } else {
  1662. px = field_a ? A[0] : B[0];
  1663. py = field_a ? A[1] : B[1];
  1664. }
  1665. } else if (total_valid == 2) {
  1666. if (num_samefield >= num_oppfield) {
  1667. if (!field_a && a_valid) {
  1668. px = A[0];
  1669. py = A[1];
  1670. } else if (!field_b && b_valid) {
  1671. px = B[0];
  1672. py = B[1];
  1673. } else if (c_valid) {
  1674. px = C[0];
  1675. py = C[1];
  1676. } else px = py = 0;
  1677. } else {
  1678. if (field_a && a_valid) {
  1679. px = A[0];
  1680. py = A[1];
  1681. } else if (field_b && b_valid) {
  1682. px = B[0];
  1683. py = B[1];
  1684. } else if (c_valid) {
  1685. px = C[0];
  1686. py = C[1];
  1687. } else px = py = 0;
  1688. }
  1689. } else if (total_valid == 1) {
  1690. px = (a_valid) ? A[0] : ((b_valid) ? B[0] : C[0]);
  1691. py = (a_valid) ? A[1] : ((b_valid) ? B[1] : C[1]);
  1692. } else
  1693. px = py = 0;
  1694. }
  1695. /* store MV using signed modulus of MV range defined in 4.11 */
  1696. s->mv[0][n][0] = s->current_picture.f.motion_val[0][xy][0] = ((px + dmv_x + r_x) & ((r_x << 1) - 1)) - r_x;
  1697. s->mv[0][n][1] = s->current_picture.f.motion_val[0][xy][1] = ((py + dmv_y + r_y) & ((r_y << 1) - 1)) - r_y;
  1698. if (mvn == 1) { /* duplicate motion data for 1-MV block */
  1699. s->current_picture.f.motion_val[0][xy + 1 ][0] = s->current_picture.f.motion_val[0][xy][0];
  1700. s->current_picture.f.motion_val[0][xy + 1 ][1] = s->current_picture.f.motion_val[0][xy][1];
  1701. s->current_picture.f.motion_val[0][xy + wrap ][0] = s->current_picture.f.motion_val[0][xy][0];
  1702. s->current_picture.f.motion_val[0][xy + wrap ][1] = s->current_picture.f.motion_val[0][xy][1];
  1703. s->current_picture.f.motion_val[0][xy + wrap + 1][0] = s->current_picture.f.motion_val[0][xy][0];
  1704. s->current_picture.f.motion_val[0][xy + wrap + 1][1] = s->current_picture.f.motion_val[0][xy][1];
  1705. } else if (mvn == 2) { /* duplicate motion data for 2-Field MV block */
  1706. s->current_picture.f.motion_val[0][xy + 1][0] = s->current_picture.f.motion_val[0][xy][0];
  1707. s->current_picture.f.motion_val[0][xy + 1][1] = s->current_picture.f.motion_val[0][xy][1];
  1708. s->mv[0][n + 1][0] = s->mv[0][n][0];
  1709. s->mv[0][n + 1][1] = s->mv[0][n][1];
  1710. }
  1711. }
  1712. /** Motion compensation for direct or interpolated blocks in B-frames
  1713. */
  1714. static void vc1_interp_mc(VC1Context *v)
  1715. {
  1716. MpegEncContext *s = &v->s;
  1717. DSPContext *dsp = &v->s.dsp;
  1718. H264ChromaContext *h264chroma = &v->h264chroma;
  1719. uint8_t *srcY, *srcU, *srcV;
  1720. int dxy, mx, my, uvmx, uvmy, src_x, src_y, uvsrc_x, uvsrc_y;
  1721. int off, off_uv;
  1722. int v_edge_pos = s->v_edge_pos >> v->field_mode;
  1723. if (!v->field_mode && !v->s.next_picture.f.data[0])
  1724. return;
  1725. mx = s->mv[1][0][0];
  1726. my = s->mv[1][0][1];
  1727. uvmx = (mx + ((mx & 3) == 3)) >> 1;
  1728. uvmy = (my + ((my & 3) == 3)) >> 1;
  1729. if (v->field_mode) {
  1730. if (v->cur_field_type != v->ref_field_type[1])
  1731. my = my - 2 + 4 * v->cur_field_type;
  1732. uvmy = uvmy - 2 + 4 * v->cur_field_type;
  1733. }
  1734. if (v->fastuvmc) {
  1735. uvmx = uvmx + ((uvmx < 0) ? -(uvmx & 1) : (uvmx & 1));
  1736. uvmy = uvmy + ((uvmy < 0) ? -(uvmy & 1) : (uvmy & 1));
  1737. }
  1738. srcY = s->next_picture.f.data[0];
  1739. srcU = s->next_picture.f.data[1];
  1740. srcV = s->next_picture.f.data[2];
  1741. src_x = s->mb_x * 16 + (mx >> 2);
  1742. src_y = s->mb_y * 16 + (my >> 2);
  1743. uvsrc_x = s->mb_x * 8 + (uvmx >> 2);
  1744. uvsrc_y = s->mb_y * 8 + (uvmy >> 2);
  1745. if (v->profile != PROFILE_ADVANCED) {
  1746. src_x = av_clip( src_x, -16, s->mb_width * 16);
  1747. src_y = av_clip( src_y, -16, s->mb_height * 16);
  1748. uvsrc_x = av_clip(uvsrc_x, -8, s->mb_width * 8);
  1749. uvsrc_y = av_clip(uvsrc_y, -8, s->mb_height * 8);
  1750. } else {
  1751. src_x = av_clip( src_x, -17, s->avctx->coded_width);
  1752. src_y = av_clip( src_y, -18, s->avctx->coded_height + 1);
  1753. uvsrc_x = av_clip(uvsrc_x, -8, s->avctx->coded_width >> 1);
  1754. uvsrc_y = av_clip(uvsrc_y, -8, s->avctx->coded_height >> 1);
  1755. }
  1756. srcY += src_y * s->linesize + src_x;
  1757. srcU += uvsrc_y * s->uvlinesize + uvsrc_x;
  1758. srcV += uvsrc_y * s->uvlinesize + uvsrc_x;
  1759. if (v->field_mode && v->ref_field_type[1]) {
  1760. srcY += s->current_picture_ptr->f.linesize[0];
  1761. srcU += s->current_picture_ptr->f.linesize[1];
  1762. srcV += s->current_picture_ptr->f.linesize[2];
  1763. }
  1764. /* for grayscale we should not try to read from unknown area */
  1765. if (s->flags & CODEC_FLAG_GRAY) {
  1766. srcU = s->edge_emu_buffer + 18 * s->linesize;
  1767. srcV = s->edge_emu_buffer + 18 * s->linesize;
  1768. }
  1769. if (v->rangeredfrm || s->h_edge_pos < 22 || v_edge_pos < 22
  1770. || (unsigned)(src_x - 1) > s->h_edge_pos - (mx & 3) - 16 - 3
  1771. || (unsigned)(src_y - 1) > v_edge_pos - (my & 3) - 16 - 3) {
  1772. uint8_t *uvbuf = s->edge_emu_buffer + 19 * s->linesize;
  1773. srcY -= s->mspel * (1 + s->linesize);
  1774. s->vdsp.emulated_edge_mc(s->edge_emu_buffer, srcY, s->linesize,
  1775. 17 + s->mspel * 2, 17 + s->mspel * 2,
  1776. src_x - s->mspel, src_y - s->mspel,
  1777. s->h_edge_pos, v_edge_pos);
  1778. srcY = s->edge_emu_buffer;
  1779. s->vdsp.emulated_edge_mc(uvbuf , srcU, s->uvlinesize, 8 + 1, 8 + 1,
  1780. uvsrc_x, uvsrc_y, s->h_edge_pos >> 1, v_edge_pos >> 1);
  1781. s->vdsp.emulated_edge_mc(uvbuf + 16, srcV, s->uvlinesize, 8 + 1, 8 + 1,
  1782. uvsrc_x, uvsrc_y, s->h_edge_pos >> 1, v_edge_pos >> 1);
  1783. srcU = uvbuf;
  1784. srcV = uvbuf + 16;
  1785. /* if we deal with range reduction we need to scale source blocks */
  1786. if (v->rangeredfrm) {
  1787. int i, j;
  1788. uint8_t *src, *src2;
  1789. src = srcY;
  1790. for (j = 0; j < 17 + s->mspel * 2; j++) {
  1791. for (i = 0; i < 17 + s->mspel * 2; i++)
  1792. src[i] = ((src[i] - 128) >> 1) + 128;
  1793. src += s->linesize;
  1794. }
  1795. src = srcU;
  1796. src2 = srcV;
  1797. for (j = 0; j < 9; j++) {
  1798. for (i = 0; i < 9; i++) {
  1799. src[i] = ((src[i] - 128) >> 1) + 128;
  1800. src2[i] = ((src2[i] - 128) >> 1) + 128;
  1801. }
  1802. src += s->uvlinesize;
  1803. src2 += s->uvlinesize;
  1804. }
  1805. }
  1806. srcY += s->mspel * (1 + s->linesize);
  1807. }
  1808. off = 0;
  1809. off_uv = 0;
  1810. if (s->mspel) {
  1811. dxy = ((my & 3) << 2) | (mx & 3);
  1812. v->vc1dsp.avg_vc1_mspel_pixels_tab[dxy](s->dest[0] + off , srcY , s->linesize, v->rnd);
  1813. v->vc1dsp.avg_vc1_mspel_pixels_tab[dxy](s->dest[0] + off + 8, srcY + 8, s->linesize, v->rnd);
  1814. srcY += s->linesize * 8;
  1815. v->vc1dsp.avg_vc1_mspel_pixels_tab[dxy](s->dest[0] + off + 8 * s->linesize , srcY , s->linesize, v->rnd);
  1816. v->vc1dsp.avg_vc1_mspel_pixels_tab[dxy](s->dest[0] + off + 8 * s->linesize + 8, srcY + 8, s->linesize, v->rnd);
  1817. } else { // hpel mc
  1818. dxy = (my & 2) | ((mx & 2) >> 1);
  1819. if (!v->rnd)
  1820. dsp->avg_pixels_tab[0][dxy](s->dest[0] + off, srcY, s->linesize, 16);
  1821. else
  1822. dsp->avg_no_rnd_pixels_tab[dxy](s->dest[0] + off, srcY, s->linesize, 16);
  1823. }
  1824. if (s->flags & CODEC_FLAG_GRAY) return;
  1825. /* Chroma MC always uses qpel blilinear */
  1826. uvmx = (uvmx & 3) << 1;
  1827. uvmy = (uvmy & 3) << 1;
  1828. if (!v->rnd) {
  1829. h264chroma->avg_h264_chroma_pixels_tab[0](s->dest[1] + off_uv, srcU, s->uvlinesize, 8, uvmx, uvmy);
  1830. h264chroma->avg_h264_chroma_pixels_tab[0](s->dest[2] + off_uv, srcV, s->uvlinesize, 8, uvmx, uvmy);
  1831. } else {
  1832. v->vc1dsp.avg_no_rnd_vc1_chroma_pixels_tab[0](s->dest[1] + off_uv, srcU, s->uvlinesize, 8, uvmx, uvmy);
  1833. v->vc1dsp.avg_no_rnd_vc1_chroma_pixels_tab[0](s->dest[2] + off_uv, srcV, s->uvlinesize, 8, uvmx, uvmy);
  1834. }
  1835. }
  1836. static av_always_inline int scale_mv(int value, int bfrac, int inv, int qs)
  1837. {
  1838. int n = bfrac;
  1839. #if B_FRACTION_DEN==256
  1840. if (inv)
  1841. n -= 256;
  1842. if (!qs)
  1843. return 2 * ((value * n + 255) >> 9);
  1844. return (value * n + 128) >> 8;
  1845. #else
  1846. if (inv)
  1847. n -= B_FRACTION_DEN;
  1848. if (!qs)
  1849. return 2 * ((value * n + B_FRACTION_DEN - 1) / (2 * B_FRACTION_DEN));
  1850. return (value * n + B_FRACTION_DEN/2) / B_FRACTION_DEN;
  1851. #endif
  1852. }
  1853. /** Reconstruct motion vector for B-frame and do motion compensation
  1854. */
  1855. static inline void vc1_b_mc(VC1Context *v, int dmv_x[2], int dmv_y[2],
  1856. int direct, int mode)
  1857. {
  1858. if (v->use_ic) {
  1859. v->mv_mode2 = v->mv_mode;
  1860. v->mv_mode = MV_PMODE_INTENSITY_COMP;
  1861. }
  1862. if (direct) {
  1863. vc1_mc_1mv(v, 0);
  1864. vc1_interp_mc(v);
  1865. if (v->use_ic)
  1866. v->mv_mode = v->mv_mode2;
  1867. return;
  1868. }
  1869. if (mode == BMV_TYPE_INTERPOLATED) {
  1870. vc1_mc_1mv(v, 0);
  1871. vc1_interp_mc(v);
  1872. if (v->use_ic)
  1873. v->mv_mode = v->mv_mode2;
  1874. return;
  1875. }
  1876. if (v->use_ic && (mode == BMV_TYPE_BACKWARD))
  1877. v->mv_mode = v->mv_mode2;
  1878. vc1_mc_1mv(v, (mode == BMV_TYPE_BACKWARD));
  1879. if (v->use_ic)
  1880. v->mv_mode = v->mv_mode2;
  1881. }
  1882. static inline void vc1_pred_b_mv(VC1Context *v, int dmv_x[2], int dmv_y[2],
  1883. int direct, int mvtype)
  1884. {
  1885. MpegEncContext *s = &v->s;
  1886. int xy, wrap, off = 0;
  1887. int16_t *A, *B, *C;
  1888. int px, py;
  1889. int sum;
  1890. int r_x, r_y;
  1891. const uint8_t *is_intra = v->mb_type[0];
  1892. r_x = v->range_x;
  1893. r_y = v->range_y;
  1894. /* scale MV difference to be quad-pel */
  1895. dmv_x[0] <<= 1 - s->quarter_sample;
  1896. dmv_y[0] <<= 1 - s->quarter_sample;
  1897. dmv_x[1] <<= 1 - s->quarter_sample;
  1898. dmv_y[1] <<= 1 - s->quarter_sample;
  1899. wrap = s->b8_stride;
  1900. xy = s->block_index[0];
  1901. if (s->mb_intra) {
  1902. s->current_picture.f.motion_val[0][xy + v->blocks_off][0] =
  1903. s->current_picture.f.motion_val[0][xy + v->blocks_off][1] =
  1904. s->current_picture.f.motion_val[1][xy + v->blocks_off][0] =
  1905. s->current_picture.f.motion_val[1][xy + v->blocks_off][1] = 0;
  1906. return;
  1907. }
  1908. if (!v->field_mode) {
  1909. s->mv[0][0][0] = scale_mv(s->next_picture.f.motion_val[1][xy][0], v->bfraction, 0, s->quarter_sample);
  1910. s->mv[0][0][1] = scale_mv(s->next_picture.f.motion_val[1][xy][1], v->bfraction, 0, s->quarter_sample);
  1911. s->mv[1][0][0] = scale_mv(s->next_picture.f.motion_val[1][xy][0], v->bfraction, 1, s->quarter_sample);
  1912. s->mv[1][0][1] = scale_mv(s->next_picture.f.motion_val[1][xy][1], v->bfraction, 1, s->quarter_sample);
  1913. /* Pullback predicted motion vectors as specified in 8.4.5.4 */
  1914. s->mv[0][0][0] = av_clip(s->mv[0][0][0], -60 - (s->mb_x << 6), (s->mb_width << 6) - 4 - (s->mb_x << 6));
  1915. s->mv[0][0][1] = av_clip(s->mv[0][0][1], -60 - (s->mb_y << 6), (s->mb_height << 6) - 4 - (s->mb_y << 6));
  1916. s->mv[1][0][0] = av_clip(s->mv[1][0][0], -60 - (s->mb_x << 6), (s->mb_width << 6) - 4 - (s->mb_x << 6));
  1917. s->mv[1][0][1] = av_clip(s->mv[1][0][1], -60 - (s->mb_y << 6), (s->mb_height << 6) - 4 - (s->mb_y << 6));
  1918. }
  1919. if (direct) {
  1920. s->current_picture.f.motion_val[0][xy + v->blocks_off][0] = s->mv[0][0][0];
  1921. s->current_picture.f.motion_val[0][xy + v->blocks_off][1] = s->mv[0][0][1];
  1922. s->current_picture.f.motion_val[1][xy + v->blocks_off][0] = s->mv[1][0][0];
  1923. s->current_picture.f.motion_val[1][xy + v->blocks_off][1] = s->mv[1][0][1];
  1924. return;
  1925. }
  1926. if ((mvtype == BMV_TYPE_FORWARD) || (mvtype == BMV_TYPE_INTERPOLATED)) {
  1927. C = s->current_picture.f.motion_val[0][xy - 2];
  1928. A = s->current_picture.f.motion_val[0][xy - wrap * 2];
  1929. off = (s->mb_x == (s->mb_width - 1)) ? -2 : 2;
  1930. B = s->current_picture.f.motion_val[0][xy - wrap * 2 + off];
  1931. if (!s->mb_x) C[0] = C[1] = 0;
  1932. if (!s->first_slice_line) { // predictor A is not out of bounds
  1933. if (s->mb_width == 1) {
  1934. px = A[0];
  1935. py = A[1];
  1936. } else {
  1937. px = mid_pred(A[0], B[0], C[0]);
  1938. py = mid_pred(A[1], B[1], C[1]);
  1939. }
  1940. } else if (s->mb_x) { // predictor C is not out of bounds
  1941. px = C[0];
  1942. py = C[1];
  1943. } else {
  1944. px = py = 0;
  1945. }
  1946. /* Pullback MV as specified in 8.3.5.3.4 */
  1947. {
  1948. int qx, qy, X, Y;
  1949. if (v->profile < PROFILE_ADVANCED) {
  1950. qx = (s->mb_x << 5);
  1951. qy = (s->mb_y << 5);
  1952. X = (s->mb_width << 5) - 4;
  1953. Y = (s->mb_height << 5) - 4;
  1954. if (qx + px < -28) px = -28 - qx;
  1955. if (qy + py < -28) py = -28 - qy;
  1956. if (qx + px > X) px = X - qx;
  1957. if (qy + py > Y) py = Y - qy;
  1958. } else {
  1959. qx = (s->mb_x << 6);
  1960. qy = (s->mb_y << 6);
  1961. X = (s->mb_width << 6) - 4;
  1962. Y = (s->mb_height << 6) - 4;
  1963. if (qx + px < -60) px = -60 - qx;
  1964. if (qy + py < -60) py = -60 - qy;
  1965. if (qx + px > X) px = X - qx;
  1966. if (qy + py > Y) py = Y - qy;
  1967. }
  1968. }
  1969. /* Calculate hybrid prediction as specified in 8.3.5.3.5 */
  1970. if (0 && !s->first_slice_line && s->mb_x) {
  1971. if (is_intra[xy - wrap])
  1972. sum = FFABS(px) + FFABS(py);
  1973. else
  1974. sum = FFABS(px - A[0]) + FFABS(py - A[1]);
  1975. if (sum > 32) {
  1976. if (get_bits1(&s->gb)) {
  1977. px = A[0];
  1978. py = A[1];
  1979. } else {
  1980. px = C[0];
  1981. py = C[1];
  1982. }
  1983. } else {
  1984. if (is_intra[xy - 2])
  1985. sum = FFABS(px) + FFABS(py);
  1986. else
  1987. sum = FFABS(px - C[0]) + FFABS(py - C[1]);
  1988. if (sum > 32) {
  1989. if (get_bits1(&s->gb)) {
  1990. px = A[0];
  1991. py = A[1];
  1992. } else {
  1993. px = C[0];
  1994. py = C[1];
  1995. }
  1996. }
  1997. }
  1998. }
  1999. /* store MV using signed modulus of MV range defined in 4.11 */
  2000. s->mv[0][0][0] = ((px + dmv_x[0] + r_x) & ((r_x << 1) - 1)) - r_x;
  2001. s->mv[0][0][1] = ((py + dmv_y[0] + r_y) & ((r_y << 1) - 1)) - r_y;
  2002. }
  2003. if ((mvtype == BMV_TYPE_BACKWARD) || (mvtype == BMV_TYPE_INTERPOLATED)) {
  2004. C = s->current_picture.f.motion_val[1][xy - 2];
  2005. A = s->current_picture.f.motion_val[1][xy - wrap * 2];
  2006. off = (s->mb_x == (s->mb_width - 1)) ? -2 : 2;
  2007. B = s->current_picture.f.motion_val[1][xy - wrap * 2 + off];
  2008. if (!s->mb_x)
  2009. C[0] = C[1] = 0;
  2010. if (!s->first_slice_line) { // predictor A is not out of bounds
  2011. if (s->mb_width == 1) {
  2012. px = A[0];
  2013. py = A[1];
  2014. } else {
  2015. px = mid_pred(A[0], B[0], C[0]);
  2016. py = mid_pred(A[1], B[1], C[1]);
  2017. }
  2018. } else if (s->mb_x) { // predictor C is not out of bounds
  2019. px = C[0];
  2020. py = C[1];
  2021. } else {
  2022. px = py = 0;
  2023. }
  2024. /* Pullback MV as specified in 8.3.5.3.4 */
  2025. {
  2026. int qx, qy, X, Y;
  2027. if (v->profile < PROFILE_ADVANCED) {
  2028. qx = (s->mb_x << 5);
  2029. qy = (s->mb_y << 5);
  2030. X = (s->mb_width << 5) - 4;
  2031. Y = (s->mb_height << 5) - 4;
  2032. if (qx + px < -28) px = -28 - qx;
  2033. if (qy + py < -28) py = -28 - qy;
  2034. if (qx + px > X) px = X - qx;
  2035. if (qy + py > Y) py = Y - qy;
  2036. } else {
  2037. qx = (s->mb_x << 6);
  2038. qy = (s->mb_y << 6);
  2039. X = (s->mb_width << 6) - 4;
  2040. Y = (s->mb_height << 6) - 4;
  2041. if (qx + px < -60) px = -60 - qx;
  2042. if (qy + py < -60) py = -60 - qy;
  2043. if (qx + px > X) px = X - qx;
  2044. if (qy + py > Y) py = Y - qy;
  2045. }
  2046. }
  2047. /* Calculate hybrid prediction as specified in 8.3.5.3.5 */
  2048. if (0 && !s->first_slice_line && s->mb_x) {
  2049. if (is_intra[xy - wrap])
  2050. sum = FFABS(px) + FFABS(py);
  2051. else
  2052. sum = FFABS(px - A[0]) + FFABS(py - A[1]);
  2053. if (sum > 32) {
  2054. if (get_bits1(&s->gb)) {
  2055. px = A[0];
  2056. py = A[1];
  2057. } else {
  2058. px = C[0];
  2059. py = C[1];
  2060. }
  2061. } else {
  2062. if (is_intra[xy - 2])
  2063. sum = FFABS(px) + FFABS(py);
  2064. else
  2065. sum = FFABS(px - C[0]) + FFABS(py - C[1]);
  2066. if (sum > 32) {
  2067. if (get_bits1(&s->gb)) {
  2068. px = A[0];
  2069. py = A[1];
  2070. } else {
  2071. px = C[0];
  2072. py = C[1];
  2073. }
  2074. }
  2075. }
  2076. }
  2077. /* store MV using signed modulus of MV range defined in 4.11 */
  2078. s->mv[1][0][0] = ((px + dmv_x[1] + r_x) & ((r_x << 1) - 1)) - r_x;
  2079. s->mv[1][0][1] = ((py + dmv_y[1] + r_y) & ((r_y << 1) - 1)) - r_y;
  2080. }
  2081. s->current_picture.f.motion_val[0][xy][0] = s->mv[0][0][0];
  2082. s->current_picture.f.motion_val[0][xy][1] = s->mv[0][0][1];
  2083. s->current_picture.f.motion_val[1][xy][0] = s->mv[1][0][0];
  2084. s->current_picture.f.motion_val[1][xy][1] = s->mv[1][0][1];
  2085. }
  2086. static inline void vc1_pred_b_mv_intfi(VC1Context *v, int n, int *dmv_x, int *dmv_y, int mv1, int *pred_flag)
  2087. {
  2088. int dir = (v->bmvtype == BMV_TYPE_BACKWARD) ? 1 : 0;
  2089. MpegEncContext *s = &v->s;
  2090. int mb_pos = s->mb_x + s->mb_y * s->mb_stride;
  2091. if (v->bmvtype == BMV_TYPE_DIRECT) {
  2092. int total_opp, k, f;
  2093. if (s->next_picture.f.mb_type[mb_pos + v->mb_off] != MB_TYPE_INTRA) {
  2094. s->mv[0][0][0] = scale_mv(s->next_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][0],
  2095. v->bfraction, 0, s->quarter_sample);
  2096. s->mv[0][0][1] = scale_mv(s->next_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][1],
  2097. v->bfraction, 0, s->quarter_sample);
  2098. s->mv[1][0][0] = scale_mv(s->next_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][0],
  2099. v->bfraction, 1, s->quarter_sample);
  2100. s->mv[1][0][1] = scale_mv(s->next_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][1],
  2101. v->bfraction, 1, s->quarter_sample);
  2102. total_opp = v->mv_f_next[0][s->block_index[0] + v->blocks_off]
  2103. + v->mv_f_next[0][s->block_index[1] + v->blocks_off]
  2104. + v->mv_f_next[0][s->block_index[2] + v->blocks_off]
  2105. + v->mv_f_next[0][s->block_index[3] + v->blocks_off];
  2106. f = (total_opp > 2) ? 1 : 0;
  2107. } else {
  2108. s->mv[0][0][0] = s->mv[0][0][1] = 0;
  2109. s->mv[1][0][0] = s->mv[1][0][1] = 0;
  2110. f = 0;
  2111. }
  2112. v->ref_field_type[0] = v->ref_field_type[1] = v->cur_field_type ^ f;
  2113. for (k = 0; k < 4; k++) {
  2114. s->current_picture.f.motion_val[0][s->block_index[k] + v->blocks_off][0] = s->mv[0][0][0];
  2115. s->current_picture.f.motion_val[0][s->block_index[k] + v->blocks_off][1] = s->mv[0][0][1];
  2116. s->current_picture.f.motion_val[1][s->block_index[k] + v->blocks_off][0] = s->mv[1][0][0];
  2117. s->current_picture.f.motion_val[1][s->block_index[k] + v->blocks_off][1] = s->mv[1][0][1];
  2118. v->mv_f[0][s->block_index[k] + v->blocks_off] = f;
  2119. v->mv_f[1][s->block_index[k] + v->blocks_off] = f;
  2120. }
  2121. return;
  2122. }
  2123. if (v->bmvtype == BMV_TYPE_INTERPOLATED) {
  2124. vc1_pred_mv(v, 0, dmv_x[0], dmv_y[0], 1, v->range_x, v->range_y, v->mb_type[0], pred_flag[0], 0);
  2125. vc1_pred_mv(v, 0, dmv_x[1], dmv_y[1], 1, v->range_x, v->range_y, v->mb_type[0], pred_flag[1], 1);
  2126. return;
  2127. }
  2128. if (dir) { // backward
  2129. vc1_pred_mv(v, n, dmv_x[1], dmv_y[1], mv1, v->range_x, v->range_y, v->mb_type[0], pred_flag[1], 1);
  2130. if (n == 3 || mv1) {
  2131. vc1_pred_mv(v, 0, dmv_x[0], dmv_y[0], 1, v->range_x, v->range_y, v->mb_type[0], 0, 0);
  2132. }
  2133. } else { // forward
  2134. vc1_pred_mv(v, n, dmv_x[0], dmv_y[0], mv1, v->range_x, v->range_y, v->mb_type[0], pred_flag[0], 0);
  2135. if (n == 3 || mv1) {
  2136. vc1_pred_mv(v, 0, dmv_x[1], dmv_y[1], 1, v->range_x, v->range_y, v->mb_type[0], 0, 1);
  2137. }
  2138. }
  2139. }
  2140. /** Get predicted DC value for I-frames only
  2141. * prediction dir: left=0, top=1
  2142. * @param s MpegEncContext
  2143. * @param overlap flag indicating that overlap filtering is used
  2144. * @param pq integer part of picture quantizer
  2145. * @param[in] n block index in the current MB
  2146. * @param dc_val_ptr Pointer to DC predictor
  2147. * @param dir_ptr Prediction direction for use in AC prediction
  2148. */
  2149. static inline int vc1_i_pred_dc(MpegEncContext *s, int overlap, int pq, int n,
  2150. int16_t **dc_val_ptr, int *dir_ptr)
  2151. {
  2152. int a, b, c, wrap, pred, scale;
  2153. int16_t *dc_val;
  2154. static const uint16_t dcpred[32] = {
  2155. -1, 1024, 512, 341, 256, 205, 171, 146, 128,
  2156. 114, 102, 93, 85, 79, 73, 68, 64,
  2157. 60, 57, 54, 51, 49, 47, 45, 43,
  2158. 41, 39, 38, 37, 35, 34, 33
  2159. };
  2160. /* find prediction - wmv3_dc_scale always used here in fact */
  2161. if (n < 4) scale = s->y_dc_scale;
  2162. else scale = s->c_dc_scale;
  2163. wrap = s->block_wrap[n];
  2164. dc_val = s->dc_val[0] + s->block_index[n];
  2165. /* B A
  2166. * C X
  2167. */
  2168. c = dc_val[ - 1];
  2169. b = dc_val[ - 1 - wrap];
  2170. a = dc_val[ - wrap];
  2171. if (pq < 9 || !overlap) {
  2172. /* Set outer values */
  2173. if (s->first_slice_line && (n != 2 && n != 3))
  2174. b = a = dcpred[scale];
  2175. if (s->mb_x == 0 && (n != 1 && n != 3))
  2176. b = c = dcpred[scale];
  2177. } else {
  2178. /* Set outer values */
  2179. if (s->first_slice_line && (n != 2 && n != 3))
  2180. b = a = 0;
  2181. if (s->mb_x == 0 && (n != 1 && n != 3))
  2182. b = c = 0;
  2183. }
  2184. if (abs(a - b) <= abs(b - c)) {
  2185. pred = c;
  2186. *dir_ptr = 1; // left
  2187. } else {
  2188. pred = a;
  2189. *dir_ptr = 0; // top
  2190. }
  2191. /* update predictor */
  2192. *dc_val_ptr = &dc_val[0];
  2193. return pred;
  2194. }
  2195. /** Get predicted DC value
  2196. * prediction dir: left=0, top=1
  2197. * @param s MpegEncContext
  2198. * @param overlap flag indicating that overlap filtering is used
  2199. * @param pq integer part of picture quantizer
  2200. * @param[in] n block index in the current MB
  2201. * @param a_avail flag indicating top block availability
  2202. * @param c_avail flag indicating left block availability
  2203. * @param dc_val_ptr Pointer to DC predictor
  2204. * @param dir_ptr Prediction direction for use in AC prediction
  2205. */
  2206. static inline int vc1_pred_dc(MpegEncContext *s, int overlap, int pq, int n,
  2207. int a_avail, int c_avail,
  2208. int16_t **dc_val_ptr, int *dir_ptr)
  2209. {
  2210. int a, b, c, wrap, pred;
  2211. int16_t *dc_val;
  2212. int mb_pos = s->mb_x + s->mb_y * s->mb_stride;
  2213. int q1, q2 = 0;
  2214. int dqscale_index;
  2215. wrap = s->block_wrap[n];
  2216. dc_val = s->dc_val[0] + s->block_index[n];
  2217. /* B A
  2218. * C X
  2219. */
  2220. c = dc_val[ - 1];
  2221. b = dc_val[ - 1 - wrap];
  2222. a = dc_val[ - wrap];
  2223. /* scale predictors if needed */
  2224. q1 = s->current_picture.f.qscale_table[mb_pos];
  2225. dqscale_index = s->y_dc_scale_table[q1] - 1;
  2226. if (dqscale_index < 0)
  2227. return 0;
  2228. if (c_avail && (n != 1 && n != 3)) {
  2229. q2 = s->current_picture.f.qscale_table[mb_pos - 1];
  2230. if (q2 && q2 != q1)
  2231. c = (c * s->y_dc_scale_table[q2] * ff_vc1_dqscale[dqscale_index] + 0x20000) >> 18;
  2232. }
  2233. if (a_avail && (n != 2 && n != 3)) {
  2234. q2 = s->current_picture.f.qscale_table[mb_pos - s->mb_stride];
  2235. if (q2 && q2 != q1)
  2236. a = (a * s->y_dc_scale_table[q2] * ff_vc1_dqscale[dqscale_index] + 0x20000) >> 18;
  2237. }
  2238. if (a_avail && c_avail && (n != 3)) {
  2239. int off = mb_pos;
  2240. if (n != 1)
  2241. off--;
  2242. if (n != 2)
  2243. off -= s->mb_stride;
  2244. q2 = s->current_picture.f.qscale_table[off];
  2245. if (q2 && q2 != q1)
  2246. b = (b * s->y_dc_scale_table[q2] * ff_vc1_dqscale[dqscale_index] + 0x20000) >> 18;
  2247. }
  2248. if (a_avail && c_avail) {
  2249. if (abs(a - b) <= abs(b - c)) {
  2250. pred = c;
  2251. *dir_ptr = 1; // left
  2252. } else {
  2253. pred = a;
  2254. *dir_ptr = 0; // top
  2255. }
  2256. } else if (a_avail) {
  2257. pred = a;
  2258. *dir_ptr = 0; // top
  2259. } else if (c_avail) {
  2260. pred = c;
  2261. *dir_ptr = 1; // left
  2262. } else {
  2263. pred = 0;
  2264. *dir_ptr = 1; // left
  2265. }
  2266. /* update predictor */
  2267. *dc_val_ptr = &dc_val[0];
  2268. return pred;
  2269. }
  2270. /** @} */ // Block group
  2271. /**
  2272. * @name VC1 Macroblock-level functions in Simple/Main Profiles
  2273. * @see 7.1.4, p91 and 8.1.1.7, p(1)04
  2274. * @{
  2275. */
  2276. static inline int vc1_coded_block_pred(MpegEncContext * s, int n,
  2277. uint8_t **coded_block_ptr)
  2278. {
  2279. int xy, wrap, pred, a, b, c;
  2280. xy = s->block_index[n];
  2281. wrap = s->b8_stride;
  2282. /* B C
  2283. * A X
  2284. */
  2285. a = s->coded_block[xy - 1 ];
  2286. b = s->coded_block[xy - 1 - wrap];
  2287. c = s->coded_block[xy - wrap];
  2288. if (b == c) {
  2289. pred = a;
  2290. } else {
  2291. pred = c;
  2292. }
  2293. /* store value */
  2294. *coded_block_ptr = &s->coded_block[xy];
  2295. return pred;
  2296. }
  2297. /**
  2298. * Decode one AC coefficient
  2299. * @param v The VC1 context
  2300. * @param last Last coefficient
  2301. * @param skip How much zero coefficients to skip
  2302. * @param value Decoded AC coefficient value
  2303. * @param codingset set of VLC to decode data
  2304. * @see 8.1.3.4
  2305. */
  2306. static void vc1_decode_ac_coeff(VC1Context *v, int *last, int *skip,
  2307. int *value, int codingset)
  2308. {
  2309. GetBitContext *gb = &v->s.gb;
  2310. int index, escape, run = 0, level = 0, lst = 0;
  2311. index = get_vlc2(gb, ff_vc1_ac_coeff_table[codingset].table, AC_VLC_BITS, 3);
  2312. if (index != ff_vc1_ac_sizes[codingset] - 1) {
  2313. run = vc1_index_decode_table[codingset][index][0];
  2314. level = vc1_index_decode_table[codingset][index][1];
  2315. lst = index >= vc1_last_decode_table[codingset] || get_bits_left(gb) < 0;
  2316. if (get_bits1(gb))
  2317. level = -level;
  2318. } else {
  2319. escape = decode210(gb);
  2320. if (escape != 2) {
  2321. index = get_vlc2(gb, ff_vc1_ac_coeff_table[codingset].table, AC_VLC_BITS, 3);
  2322. run = vc1_index_decode_table[codingset][index][0];
  2323. level = vc1_index_decode_table[codingset][index][1];
  2324. lst = index >= vc1_last_decode_table[codingset];
  2325. if (escape == 0) {
  2326. if (lst)
  2327. level += vc1_last_delta_level_table[codingset][run];
  2328. else
  2329. level += vc1_delta_level_table[codingset][run];
  2330. } else {
  2331. if (lst)
  2332. run += vc1_last_delta_run_table[codingset][level] + 1;
  2333. else
  2334. run += vc1_delta_run_table[codingset][level] + 1;
  2335. }
  2336. if (get_bits1(gb))
  2337. level = -level;
  2338. } else {
  2339. int sign;
  2340. lst = get_bits1(gb);
  2341. if (v->s.esc3_level_length == 0) {
  2342. if (v->pq < 8 || v->dquantfrm) { // table 59
  2343. v->s.esc3_level_length = get_bits(gb, 3);
  2344. if (!v->s.esc3_level_length)
  2345. v->s.esc3_level_length = get_bits(gb, 2) + 8;
  2346. } else { // table 60
  2347. v->s.esc3_level_length = get_unary(gb, 1, 6) + 2;
  2348. }
  2349. v->s.esc3_run_length = 3 + get_bits(gb, 2);
  2350. }
  2351. run = get_bits(gb, v->s.esc3_run_length);
  2352. sign = get_bits1(gb);
  2353. level = get_bits(gb, v->s.esc3_level_length);
  2354. if (sign)
  2355. level = -level;
  2356. }
  2357. }
  2358. *last = lst;
  2359. *skip = run;
  2360. *value = level;
  2361. }
  2362. /** Decode intra block in intra frames - should be faster than decode_intra_block
  2363. * @param v VC1Context
  2364. * @param block block to decode
  2365. * @param[in] n subblock index
  2366. * @param coded are AC coeffs present or not
  2367. * @param codingset set of VLC to decode data
  2368. */
  2369. static int vc1_decode_i_block(VC1Context *v, int16_t block[64], int n,
  2370. int coded, int codingset)
  2371. {
  2372. GetBitContext *gb = &v->s.gb;
  2373. MpegEncContext *s = &v->s;
  2374. int dc_pred_dir = 0; /* Direction of the DC prediction used */
  2375. int i;
  2376. int16_t *dc_val;
  2377. int16_t *ac_val, *ac_val2;
  2378. int dcdiff;
  2379. /* Get DC differential */
  2380. if (n < 4) {
  2381. dcdiff = get_vlc2(&s->gb, ff_msmp4_dc_luma_vlc[s->dc_table_index].table, DC_VLC_BITS, 3);
  2382. } else {
  2383. dcdiff = get_vlc2(&s->gb, ff_msmp4_dc_chroma_vlc[s->dc_table_index].table, DC_VLC_BITS, 3);
  2384. }
  2385. if (dcdiff < 0) {
  2386. av_log(s->avctx, AV_LOG_ERROR, "Illegal DC VLC\n");
  2387. return -1;
  2388. }
  2389. if (dcdiff) {
  2390. if (dcdiff == 119 /* ESC index value */) {
  2391. /* TODO: Optimize */
  2392. if (v->pq == 1) dcdiff = get_bits(gb, 10);
  2393. else if (v->pq == 2) dcdiff = get_bits(gb, 9);
  2394. else dcdiff = get_bits(gb, 8);
  2395. } else {
  2396. if (v->pq == 1)
  2397. dcdiff = (dcdiff << 2) + get_bits(gb, 2) - 3;
  2398. else if (v->pq == 2)
  2399. dcdiff = (dcdiff << 1) + get_bits1(gb) - 1;
  2400. }
  2401. if (get_bits1(gb))
  2402. dcdiff = -dcdiff;
  2403. }
  2404. /* Prediction */
  2405. dcdiff += vc1_i_pred_dc(&v->s, v->overlap, v->pq, n, &dc_val, &dc_pred_dir);
  2406. *dc_val = dcdiff;
  2407. /* Store the quantized DC coeff, used for prediction */
  2408. if (n < 4) {
  2409. block[0] = dcdiff * s->y_dc_scale;
  2410. } else {
  2411. block[0] = dcdiff * s->c_dc_scale;
  2412. }
  2413. /* Skip ? */
  2414. if (!coded) {
  2415. goto not_coded;
  2416. }
  2417. // AC Decoding
  2418. i = 1;
  2419. {
  2420. int last = 0, skip, value;
  2421. const uint8_t *zz_table;
  2422. int scale;
  2423. int k;
  2424. scale = v->pq * 2 + v->halfpq;
  2425. if (v->s.ac_pred) {
  2426. if (!dc_pred_dir)
  2427. zz_table = v->zz_8x8[2];
  2428. else
  2429. zz_table = v->zz_8x8[3];
  2430. } else
  2431. zz_table = v->zz_8x8[1];
  2432. ac_val = s->ac_val[0][0] + s->block_index[n] * 16;
  2433. ac_val2 = ac_val;
  2434. if (dc_pred_dir) // left
  2435. ac_val -= 16;
  2436. else // top
  2437. ac_val -= 16 * s->block_wrap[n];
  2438. while (!last) {
  2439. vc1_decode_ac_coeff(v, &last, &skip, &value, codingset);
  2440. i += skip;
  2441. if (i > 63)
  2442. break;
  2443. block[zz_table[i++]] = value;
  2444. }
  2445. /* apply AC prediction if needed */
  2446. if (s->ac_pred) {
  2447. if (dc_pred_dir) { // left
  2448. for (k = 1; k < 8; k++)
  2449. block[k << v->left_blk_sh] += ac_val[k];
  2450. } else { // top
  2451. for (k = 1; k < 8; k++)
  2452. block[k << v->top_blk_sh] += ac_val[k + 8];
  2453. }
  2454. }
  2455. /* save AC coeffs for further prediction */
  2456. for (k = 1; k < 8; k++) {
  2457. ac_val2[k] = block[k << v->left_blk_sh];
  2458. ac_val2[k + 8] = block[k << v->top_blk_sh];
  2459. }
  2460. /* scale AC coeffs */
  2461. for (k = 1; k < 64; k++)
  2462. if (block[k]) {
  2463. block[k] *= scale;
  2464. if (!v->pquantizer)
  2465. block[k] += (block[k] < 0) ? -v->pq : v->pq;
  2466. }
  2467. if (s->ac_pred) i = 63;
  2468. }
  2469. not_coded:
  2470. if (!coded) {
  2471. int k, scale;
  2472. ac_val = s->ac_val[0][0] + s->block_index[n] * 16;
  2473. ac_val2 = ac_val;
  2474. i = 0;
  2475. scale = v->pq * 2 + v->halfpq;
  2476. memset(ac_val2, 0, 16 * 2);
  2477. if (dc_pred_dir) { // left
  2478. ac_val -= 16;
  2479. if (s->ac_pred)
  2480. memcpy(ac_val2, ac_val, 8 * 2);
  2481. } else { // top
  2482. ac_val -= 16 * s->block_wrap[n];
  2483. if (s->ac_pred)
  2484. memcpy(ac_val2 + 8, ac_val + 8, 8 * 2);
  2485. }
  2486. /* apply AC prediction if needed */
  2487. if (s->ac_pred) {
  2488. if (dc_pred_dir) { //left
  2489. for (k = 1; k < 8; k++) {
  2490. block[k << v->left_blk_sh] = ac_val[k] * scale;
  2491. if (!v->pquantizer && block[k << v->left_blk_sh])
  2492. block[k << v->left_blk_sh] += (block[k << v->left_blk_sh] < 0) ? -v->pq : v->pq;
  2493. }
  2494. } else { // top
  2495. for (k = 1; k < 8; k++) {
  2496. block[k << v->top_blk_sh] = ac_val[k + 8] * scale;
  2497. if (!v->pquantizer && block[k << v->top_blk_sh])
  2498. block[k << v->top_blk_sh] += (block[k << v->top_blk_sh] < 0) ? -v->pq : v->pq;
  2499. }
  2500. }
  2501. i = 63;
  2502. }
  2503. }
  2504. s->block_last_index[n] = i;
  2505. return 0;
  2506. }
  2507. /** Decode intra block in intra frames - should be faster than decode_intra_block
  2508. * @param v VC1Context
  2509. * @param block block to decode
  2510. * @param[in] n subblock number
  2511. * @param coded are AC coeffs present or not
  2512. * @param codingset set of VLC to decode data
  2513. * @param mquant quantizer value for this macroblock
  2514. */
  2515. static int vc1_decode_i_block_adv(VC1Context *v, int16_t block[64], int n,
  2516. int coded, int codingset, int mquant)
  2517. {
  2518. GetBitContext *gb = &v->s.gb;
  2519. MpegEncContext *s = &v->s;
  2520. int dc_pred_dir = 0; /* Direction of the DC prediction used */
  2521. int i;
  2522. int16_t *dc_val = NULL;
  2523. int16_t *ac_val, *ac_val2;
  2524. int dcdiff;
  2525. int a_avail = v->a_avail, c_avail = v->c_avail;
  2526. int use_pred = s->ac_pred;
  2527. int scale;
  2528. int q1, q2 = 0;
  2529. int mb_pos = s->mb_x + s->mb_y * s->mb_stride;
  2530. /* Get DC differential */
  2531. if (n < 4) {
  2532. dcdiff = get_vlc2(&s->gb, ff_msmp4_dc_luma_vlc[s->dc_table_index].table, DC_VLC_BITS, 3);
  2533. } else {
  2534. dcdiff = get_vlc2(&s->gb, ff_msmp4_dc_chroma_vlc[s->dc_table_index].table, DC_VLC_BITS, 3);
  2535. }
  2536. if (dcdiff < 0) {
  2537. av_log(s->avctx, AV_LOG_ERROR, "Illegal DC VLC\n");
  2538. return -1;
  2539. }
  2540. if (dcdiff) {
  2541. if (dcdiff == 119 /* ESC index value */) {
  2542. /* TODO: Optimize */
  2543. if (mquant == 1) dcdiff = get_bits(gb, 10);
  2544. else if (mquant == 2) dcdiff = get_bits(gb, 9);
  2545. else dcdiff = get_bits(gb, 8);
  2546. } else {
  2547. if (mquant == 1)
  2548. dcdiff = (dcdiff << 2) + get_bits(gb, 2) - 3;
  2549. else if (mquant == 2)
  2550. dcdiff = (dcdiff << 1) + get_bits1(gb) - 1;
  2551. }
  2552. if (get_bits1(gb))
  2553. dcdiff = -dcdiff;
  2554. }
  2555. /* Prediction */
  2556. dcdiff += vc1_pred_dc(&v->s, v->overlap, mquant, n, v->a_avail, v->c_avail, &dc_val, &dc_pred_dir);
  2557. *dc_val = dcdiff;
  2558. /* Store the quantized DC coeff, used for prediction */
  2559. if (n < 4) {
  2560. block[0] = dcdiff * s->y_dc_scale;
  2561. } else {
  2562. block[0] = dcdiff * s->c_dc_scale;
  2563. }
  2564. //AC Decoding
  2565. i = 1;
  2566. /* check if AC is needed at all */
  2567. if (!a_avail && !c_avail)
  2568. use_pred = 0;
  2569. ac_val = s->ac_val[0][0] + s->block_index[n] * 16;
  2570. ac_val2 = ac_val;
  2571. scale = mquant * 2 + ((mquant == v->pq) ? v->halfpq : 0);
  2572. if (dc_pred_dir) // left
  2573. ac_val -= 16;
  2574. else // top
  2575. ac_val -= 16 * s->block_wrap[n];
  2576. q1 = s->current_picture.f.qscale_table[mb_pos];
  2577. if ( dc_pred_dir && c_avail && mb_pos)
  2578. q2 = s->current_picture.f.qscale_table[mb_pos - 1];
  2579. if (!dc_pred_dir && a_avail && mb_pos >= s->mb_stride)
  2580. q2 = s->current_picture.f.qscale_table[mb_pos - s->mb_stride];
  2581. if ( dc_pred_dir && n == 1)
  2582. q2 = q1;
  2583. if (!dc_pred_dir && n == 2)
  2584. q2 = q1;
  2585. if (n == 3)
  2586. q2 = q1;
  2587. if (coded) {
  2588. int last = 0, skip, value;
  2589. const uint8_t *zz_table;
  2590. int k;
  2591. if (v->s.ac_pred) {
  2592. if (!use_pred && v->fcm == ILACE_FRAME) {
  2593. zz_table = v->zzi_8x8;
  2594. } else {
  2595. if (!dc_pred_dir) // top
  2596. zz_table = v->zz_8x8[2];
  2597. else // left
  2598. zz_table = v->zz_8x8[3];
  2599. }
  2600. } else {
  2601. if (v->fcm != ILACE_FRAME)
  2602. zz_table = v->zz_8x8[1];
  2603. else
  2604. zz_table = v->zzi_8x8;
  2605. }
  2606. while (!last) {
  2607. vc1_decode_ac_coeff(v, &last, &skip, &value, codingset);
  2608. i += skip;
  2609. if (i > 63)
  2610. break;
  2611. block[zz_table[i++]] = value;
  2612. }
  2613. /* apply AC prediction if needed */
  2614. if (use_pred) {
  2615. /* scale predictors if needed*/
  2616. if (q2 && q1 != q2) {
  2617. q1 = q1 * 2 + ((q1 == v->pq) ? v->halfpq : 0) - 1;
  2618. q2 = q2 * 2 + ((q2 == v->pq) ? v->halfpq : 0) - 1;
  2619. if (q1 < 1)
  2620. return AVERROR_INVALIDDATA;
  2621. if (dc_pred_dir) { // left
  2622. for (k = 1; k < 8; k++)
  2623. block[k << v->left_blk_sh] += (ac_val[k] * q2 * ff_vc1_dqscale[q1 - 1] + 0x20000) >> 18;
  2624. } else { // top
  2625. for (k = 1; k < 8; k++)
  2626. block[k << v->top_blk_sh] += (ac_val[k + 8] * q2 * ff_vc1_dqscale[q1 - 1] + 0x20000) >> 18;
  2627. }
  2628. } else {
  2629. if (dc_pred_dir) { //left
  2630. for (k = 1; k < 8; k++)
  2631. block[k << v->left_blk_sh] += ac_val[k];
  2632. } else { //top
  2633. for (k = 1; k < 8; k++)
  2634. block[k << v->top_blk_sh] += ac_val[k + 8];
  2635. }
  2636. }
  2637. }
  2638. /* save AC coeffs for further prediction */
  2639. for (k = 1; k < 8; k++) {
  2640. ac_val2[k ] = block[k << v->left_blk_sh];
  2641. ac_val2[k + 8] = block[k << v->top_blk_sh];
  2642. }
  2643. /* scale AC coeffs */
  2644. for (k = 1; k < 64; k++)
  2645. if (block[k]) {
  2646. block[k] *= scale;
  2647. if (!v->pquantizer)
  2648. block[k] += (block[k] < 0) ? -mquant : mquant;
  2649. }
  2650. if (use_pred) i = 63;
  2651. } else { // no AC coeffs
  2652. int k;
  2653. memset(ac_val2, 0, 16 * 2);
  2654. if (dc_pred_dir) { // left
  2655. if (use_pred) {
  2656. memcpy(ac_val2, ac_val, 8 * 2);
  2657. if (q2 && q1 != q2) {
  2658. q1 = q1 * 2 + ((q1 == v->pq) ? v->halfpq : 0) - 1;
  2659. q2 = q2 * 2 + ((q2 == v->pq) ? v->halfpq : 0) - 1;
  2660. if (q1 < 1)
  2661. return AVERROR_INVALIDDATA;
  2662. for (k = 1; k < 8; k++)
  2663. ac_val2[k] = (ac_val2[k] * q2 * ff_vc1_dqscale[q1 - 1] + 0x20000) >> 18;
  2664. }
  2665. }
  2666. } else { // top
  2667. if (use_pred) {
  2668. memcpy(ac_val2 + 8, ac_val + 8, 8 * 2);
  2669. if (q2 && q1 != q2) {
  2670. q1 = q1 * 2 + ((q1 == v->pq) ? v->halfpq : 0) - 1;
  2671. q2 = q2 * 2 + ((q2 == v->pq) ? v->halfpq : 0) - 1;
  2672. if (q1 < 1)
  2673. return AVERROR_INVALIDDATA;
  2674. for (k = 1; k < 8; k++)
  2675. ac_val2[k + 8] = (ac_val2[k + 8] * q2 * ff_vc1_dqscale[q1 - 1] + 0x20000) >> 18;
  2676. }
  2677. }
  2678. }
  2679. /* apply AC prediction if needed */
  2680. if (use_pred) {
  2681. if (dc_pred_dir) { // left
  2682. for (k = 1; k < 8; k++) {
  2683. block[k << v->left_blk_sh] = ac_val2[k] * scale;
  2684. if (!v->pquantizer && block[k << v->left_blk_sh])
  2685. block[k << v->left_blk_sh] += (block[k << v->left_blk_sh] < 0) ? -mquant : mquant;
  2686. }
  2687. } else { // top
  2688. for (k = 1; k < 8; k++) {
  2689. block[k << v->top_blk_sh] = ac_val2[k + 8] * scale;
  2690. if (!v->pquantizer && block[k << v->top_blk_sh])
  2691. block[k << v->top_blk_sh] += (block[k << v->top_blk_sh] < 0) ? -mquant : mquant;
  2692. }
  2693. }
  2694. i = 63;
  2695. }
  2696. }
  2697. s->block_last_index[n] = i;
  2698. return 0;
  2699. }
  2700. /** Decode intra block in inter frames - more generic version than vc1_decode_i_block
  2701. * @param v VC1Context
  2702. * @param block block to decode
  2703. * @param[in] n subblock index
  2704. * @param coded are AC coeffs present or not
  2705. * @param mquant block quantizer
  2706. * @param codingset set of VLC to decode data
  2707. */
  2708. static int vc1_decode_intra_block(VC1Context *v, int16_t block[64], int n,
  2709. int coded, int mquant, int codingset)
  2710. {
  2711. GetBitContext *gb = &v->s.gb;
  2712. MpegEncContext *s = &v->s;
  2713. int dc_pred_dir = 0; /* Direction of the DC prediction used */
  2714. int i;
  2715. int16_t *dc_val = NULL;
  2716. int16_t *ac_val, *ac_val2;
  2717. int dcdiff;
  2718. int mb_pos = s->mb_x + s->mb_y * s->mb_stride;
  2719. int a_avail = v->a_avail, c_avail = v->c_avail;
  2720. int use_pred = s->ac_pred;
  2721. int scale;
  2722. int q1, q2 = 0;
  2723. s->dsp.clear_block(block);
  2724. /* XXX: Guard against dumb values of mquant */
  2725. mquant = (mquant < 1) ? 0 : ((mquant > 31) ? 31 : mquant);
  2726. /* Set DC scale - y and c use the same */
  2727. s->y_dc_scale = s->y_dc_scale_table[mquant];
  2728. s->c_dc_scale = s->c_dc_scale_table[mquant];
  2729. /* Get DC differential */
  2730. if (n < 4) {
  2731. dcdiff = get_vlc2(&s->gb, ff_msmp4_dc_luma_vlc[s->dc_table_index].table, DC_VLC_BITS, 3);
  2732. } else {
  2733. dcdiff = get_vlc2(&s->gb, ff_msmp4_dc_chroma_vlc[s->dc_table_index].table, DC_VLC_BITS, 3);
  2734. }
  2735. if (dcdiff < 0) {
  2736. av_log(s->avctx, AV_LOG_ERROR, "Illegal DC VLC\n");
  2737. return -1;
  2738. }
  2739. if (dcdiff) {
  2740. if (dcdiff == 119 /* ESC index value */) {
  2741. /* TODO: Optimize */
  2742. if (mquant == 1) dcdiff = get_bits(gb, 10);
  2743. else if (mquant == 2) dcdiff = get_bits(gb, 9);
  2744. else dcdiff = get_bits(gb, 8);
  2745. } else {
  2746. if (mquant == 1)
  2747. dcdiff = (dcdiff << 2) + get_bits(gb, 2) - 3;
  2748. else if (mquant == 2)
  2749. dcdiff = (dcdiff << 1) + get_bits1(gb) - 1;
  2750. }
  2751. if (get_bits1(gb))
  2752. dcdiff = -dcdiff;
  2753. }
  2754. /* Prediction */
  2755. dcdiff += vc1_pred_dc(&v->s, v->overlap, mquant, n, a_avail, c_avail, &dc_val, &dc_pred_dir);
  2756. *dc_val = dcdiff;
  2757. /* Store the quantized DC coeff, used for prediction */
  2758. if (n < 4) {
  2759. block[0] = dcdiff * s->y_dc_scale;
  2760. } else {
  2761. block[0] = dcdiff * s->c_dc_scale;
  2762. }
  2763. //AC Decoding
  2764. i = 1;
  2765. /* check if AC is needed at all and adjust direction if needed */
  2766. if (!a_avail) dc_pred_dir = 1;
  2767. if (!c_avail) dc_pred_dir = 0;
  2768. if (!a_avail && !c_avail) use_pred = 0;
  2769. ac_val = s->ac_val[0][0] + s->block_index[n] * 16;
  2770. ac_val2 = ac_val;
  2771. scale = mquant * 2 + v->halfpq;
  2772. if (dc_pred_dir) //left
  2773. ac_val -= 16;
  2774. else //top
  2775. ac_val -= 16 * s->block_wrap[n];
  2776. q1 = s->current_picture.f.qscale_table[mb_pos];
  2777. if (dc_pred_dir && c_avail && mb_pos)
  2778. q2 = s->current_picture.f.qscale_table[mb_pos - 1];
  2779. if (!dc_pred_dir && a_avail && mb_pos >= s->mb_stride)
  2780. q2 = s->current_picture.f.qscale_table[mb_pos - s->mb_stride];
  2781. if ( dc_pred_dir && n == 1)
  2782. q2 = q1;
  2783. if (!dc_pred_dir && n == 2)
  2784. q2 = q1;
  2785. if (n == 3) q2 = q1;
  2786. if (coded) {
  2787. int last = 0, skip, value;
  2788. int k;
  2789. while (!last) {
  2790. vc1_decode_ac_coeff(v, &last, &skip, &value, codingset);
  2791. i += skip;
  2792. if (i > 63)
  2793. break;
  2794. if (v->fcm == PROGRESSIVE)
  2795. block[v->zz_8x8[0][i++]] = value;
  2796. else {
  2797. if (use_pred && (v->fcm == ILACE_FRAME)) {
  2798. if (!dc_pred_dir) // top
  2799. block[v->zz_8x8[2][i++]] = value;
  2800. else // left
  2801. block[v->zz_8x8[3][i++]] = value;
  2802. } else {
  2803. block[v->zzi_8x8[i++]] = value;
  2804. }
  2805. }
  2806. }
  2807. /* apply AC prediction if needed */
  2808. if (use_pred) {
  2809. /* scale predictors if needed*/
  2810. if (q2 && q1 != q2) {
  2811. q1 = q1 * 2 + ((q1 == v->pq) ? v->halfpq : 0) - 1;
  2812. q2 = q2 * 2 + ((q2 == v->pq) ? v->halfpq : 0) - 1;
  2813. if (q1 < 1)
  2814. return AVERROR_INVALIDDATA;
  2815. if (dc_pred_dir) { // left
  2816. for (k = 1; k < 8; k++)
  2817. block[k << v->left_blk_sh] += (ac_val[k] * q2 * ff_vc1_dqscale[q1 - 1] + 0x20000) >> 18;
  2818. } else { //top
  2819. for (k = 1; k < 8; k++)
  2820. block[k << v->top_blk_sh] += (ac_val[k + 8] * q2 * ff_vc1_dqscale[q1 - 1] + 0x20000) >> 18;
  2821. }
  2822. } else {
  2823. if (dc_pred_dir) { // left
  2824. for (k = 1; k < 8; k++)
  2825. block[k << v->left_blk_sh] += ac_val[k];
  2826. } else { // top
  2827. for (k = 1; k < 8; k++)
  2828. block[k << v->top_blk_sh] += ac_val[k + 8];
  2829. }
  2830. }
  2831. }
  2832. /* save AC coeffs for further prediction */
  2833. for (k = 1; k < 8; k++) {
  2834. ac_val2[k ] = block[k << v->left_blk_sh];
  2835. ac_val2[k + 8] = block[k << v->top_blk_sh];
  2836. }
  2837. /* scale AC coeffs */
  2838. for (k = 1; k < 64; k++)
  2839. if (block[k]) {
  2840. block[k] *= scale;
  2841. if (!v->pquantizer)
  2842. block[k] += (block[k] < 0) ? -mquant : mquant;
  2843. }
  2844. if (use_pred) i = 63;
  2845. } else { // no AC coeffs
  2846. int k;
  2847. memset(ac_val2, 0, 16 * 2);
  2848. if (dc_pred_dir) { // left
  2849. if (use_pred) {
  2850. memcpy(ac_val2, ac_val, 8 * 2);
  2851. if (q2 && q1 != q2) {
  2852. q1 = q1 * 2 + ((q1 == v->pq) ? v->halfpq : 0) - 1;
  2853. q2 = q2 * 2 + ((q2 == v->pq) ? v->halfpq : 0) - 1;
  2854. if (q1 < 1)
  2855. return AVERROR_INVALIDDATA;
  2856. for (k = 1; k < 8; k++)
  2857. ac_val2[k] = (ac_val2[k] * q2 * ff_vc1_dqscale[q1 - 1] + 0x20000) >> 18;
  2858. }
  2859. }
  2860. } else { // top
  2861. if (use_pred) {
  2862. memcpy(ac_val2 + 8, ac_val + 8, 8 * 2);
  2863. if (q2 && q1 != q2) {
  2864. q1 = q1 * 2 + ((q1 == v->pq) ? v->halfpq : 0) - 1;
  2865. q2 = q2 * 2 + ((q2 == v->pq) ? v->halfpq : 0) - 1;
  2866. if (q1 < 1)
  2867. return AVERROR_INVALIDDATA;
  2868. for (k = 1; k < 8; k++)
  2869. ac_val2[k + 8] = (ac_val2[k + 8] * q2 * ff_vc1_dqscale[q1 - 1] + 0x20000) >> 18;
  2870. }
  2871. }
  2872. }
  2873. /* apply AC prediction if needed */
  2874. if (use_pred) {
  2875. if (dc_pred_dir) { // left
  2876. for (k = 1; k < 8; k++) {
  2877. block[k << v->left_blk_sh] = ac_val2[k] * scale;
  2878. if (!v->pquantizer && block[k << v->left_blk_sh])
  2879. block[k << v->left_blk_sh] += (block[k << v->left_blk_sh] < 0) ? -mquant : mquant;
  2880. }
  2881. } else { // top
  2882. for (k = 1; k < 8; k++) {
  2883. block[k << v->top_blk_sh] = ac_val2[k + 8] * scale;
  2884. if (!v->pquantizer && block[k << v->top_blk_sh])
  2885. block[k << v->top_blk_sh] += (block[k << v->top_blk_sh] < 0) ? -mquant : mquant;
  2886. }
  2887. }
  2888. i = 63;
  2889. }
  2890. }
  2891. s->block_last_index[n] = i;
  2892. return 0;
  2893. }
  2894. /** Decode P block
  2895. */
  2896. static int vc1_decode_p_block(VC1Context *v, int16_t block[64], int n,
  2897. int mquant, int ttmb, int first_block,
  2898. uint8_t *dst, int linesize, int skip_block,
  2899. int *ttmb_out)
  2900. {
  2901. MpegEncContext *s = &v->s;
  2902. GetBitContext *gb = &s->gb;
  2903. int i, j;
  2904. int subblkpat = 0;
  2905. int scale, off, idx, last, skip, value;
  2906. int ttblk = ttmb & 7;
  2907. int pat = 0;
  2908. s->dsp.clear_block(block);
  2909. if (ttmb == -1) {
  2910. ttblk = ff_vc1_ttblk_to_tt[v->tt_index][get_vlc2(gb, ff_vc1_ttblk_vlc[v->tt_index].table, VC1_TTBLK_VLC_BITS, 1)];
  2911. }
  2912. if (ttblk == TT_4X4) {
  2913. subblkpat = ~(get_vlc2(gb, ff_vc1_subblkpat_vlc[v->tt_index].table, VC1_SUBBLKPAT_VLC_BITS, 1) + 1);
  2914. }
  2915. if ((ttblk != TT_8X8 && ttblk != TT_4X4)
  2916. && ((v->ttmbf || (ttmb != -1 && (ttmb & 8) && !first_block))
  2917. || (!v->res_rtm_flag && !first_block))) {
  2918. subblkpat = decode012(gb);
  2919. if (subblkpat)
  2920. subblkpat ^= 3; // swap decoded pattern bits
  2921. if (ttblk == TT_8X4_TOP || ttblk == TT_8X4_BOTTOM)
  2922. ttblk = TT_8X4;
  2923. if (ttblk == TT_4X8_RIGHT || ttblk == TT_4X8_LEFT)
  2924. ttblk = TT_4X8;
  2925. }
  2926. scale = 2 * mquant + ((v->pq == mquant) ? v->halfpq : 0);
  2927. // convert transforms like 8X4_TOP to generic TT and SUBBLKPAT
  2928. if (ttblk == TT_8X4_TOP || ttblk == TT_8X4_BOTTOM) {
  2929. subblkpat = 2 - (ttblk == TT_8X4_TOP);
  2930. ttblk = TT_8X4;
  2931. }
  2932. if (ttblk == TT_4X8_RIGHT || ttblk == TT_4X8_LEFT) {
  2933. subblkpat = 2 - (ttblk == TT_4X8_LEFT);
  2934. ttblk = TT_4X8;
  2935. }
  2936. switch (ttblk) {
  2937. case TT_8X8:
  2938. pat = 0xF;
  2939. i = 0;
  2940. last = 0;
  2941. while (!last) {
  2942. vc1_decode_ac_coeff(v, &last, &skip, &value, v->codingset2);
  2943. i += skip;
  2944. if (i > 63)
  2945. break;
  2946. if (!v->fcm)
  2947. idx = v->zz_8x8[0][i++];
  2948. else
  2949. idx = v->zzi_8x8[i++];
  2950. block[idx] = value * scale;
  2951. if (!v->pquantizer)
  2952. block[idx] += (block[idx] < 0) ? -mquant : mquant;
  2953. }
  2954. if (!skip_block) {
  2955. if (i == 1)
  2956. v->vc1dsp.vc1_inv_trans_8x8_dc(dst, linesize, block);
  2957. else {
  2958. v->vc1dsp.vc1_inv_trans_8x8(block);
  2959. s->dsp.add_pixels_clamped(block, dst, linesize);
  2960. }
  2961. }
  2962. break;
  2963. case TT_4X4:
  2964. pat = ~subblkpat & 0xF;
  2965. for (j = 0; j < 4; j++) {
  2966. last = subblkpat & (1 << (3 - j));
  2967. i = 0;
  2968. off = (j & 1) * 4 + (j & 2) * 16;
  2969. while (!last) {
  2970. vc1_decode_ac_coeff(v, &last, &skip, &value, v->codingset2);
  2971. i += skip;
  2972. if (i > 15)
  2973. break;
  2974. if (!v->fcm)
  2975. idx = ff_vc1_simple_progressive_4x4_zz[i++];
  2976. else
  2977. idx = ff_vc1_adv_interlaced_4x4_zz[i++];
  2978. block[idx + off] = value * scale;
  2979. if (!v->pquantizer)
  2980. block[idx + off] += (block[idx + off] < 0) ? -mquant : mquant;
  2981. }
  2982. if (!(subblkpat & (1 << (3 - j))) && !skip_block) {
  2983. if (i == 1)
  2984. v->vc1dsp.vc1_inv_trans_4x4_dc(dst + (j & 1) * 4 + (j & 2) * 2 * linesize, linesize, block + off);
  2985. else
  2986. v->vc1dsp.vc1_inv_trans_4x4(dst + (j & 1) * 4 + (j & 2) * 2 * linesize, linesize, block + off);
  2987. }
  2988. }
  2989. break;
  2990. case TT_8X4:
  2991. pat = ~((subblkpat & 2) * 6 + (subblkpat & 1) * 3) & 0xF;
  2992. for (j = 0; j < 2; j++) {
  2993. last = subblkpat & (1 << (1 - j));
  2994. i = 0;
  2995. off = j * 32;
  2996. while (!last) {
  2997. vc1_decode_ac_coeff(v, &last, &skip, &value, v->codingset2);
  2998. i += skip;
  2999. if (i > 31)
  3000. break;
  3001. if (!v->fcm)
  3002. idx = v->zz_8x4[i++] + off;
  3003. else
  3004. idx = ff_vc1_adv_interlaced_8x4_zz[i++] + off;
  3005. block[idx] = value * scale;
  3006. if (!v->pquantizer)
  3007. block[idx] += (block[idx] < 0) ? -mquant : mquant;
  3008. }
  3009. if (!(subblkpat & (1 << (1 - j))) && !skip_block) {
  3010. if (i == 1)
  3011. v->vc1dsp.vc1_inv_trans_8x4_dc(dst + j * 4 * linesize, linesize, block + off);
  3012. else
  3013. v->vc1dsp.vc1_inv_trans_8x4(dst + j * 4 * linesize, linesize, block + off);
  3014. }
  3015. }
  3016. break;
  3017. case TT_4X8:
  3018. pat = ~(subblkpat * 5) & 0xF;
  3019. for (j = 0; j < 2; j++) {
  3020. last = subblkpat & (1 << (1 - j));
  3021. i = 0;
  3022. off = j * 4;
  3023. while (!last) {
  3024. vc1_decode_ac_coeff(v, &last, &skip, &value, v->codingset2);
  3025. i += skip;
  3026. if (i > 31)
  3027. break;
  3028. if (!v->fcm)
  3029. idx = v->zz_4x8[i++] + off;
  3030. else
  3031. idx = ff_vc1_adv_interlaced_4x8_zz[i++] + off;
  3032. block[idx] = value * scale;
  3033. if (!v->pquantizer)
  3034. block[idx] += (block[idx] < 0) ? -mquant : mquant;
  3035. }
  3036. if (!(subblkpat & (1 << (1 - j))) && !skip_block) {
  3037. if (i == 1)
  3038. v->vc1dsp.vc1_inv_trans_4x8_dc(dst + j * 4, linesize, block + off);
  3039. else
  3040. v->vc1dsp.vc1_inv_trans_4x8(dst + j*4, linesize, block + off);
  3041. }
  3042. }
  3043. break;
  3044. }
  3045. if (ttmb_out)
  3046. *ttmb_out |= ttblk << (n * 4);
  3047. return pat;
  3048. }
  3049. /** @} */ // Macroblock group
  3050. static const int size_table [6] = { 0, 2, 3, 4, 5, 8 };
  3051. static const int offset_table[6] = { 0, 1, 3, 7, 15, 31 };
  3052. static av_always_inline void vc1_apply_p_v_loop_filter(VC1Context *v, int block_num)
  3053. {
  3054. MpegEncContext *s = &v->s;
  3055. int mb_cbp = v->cbp[s->mb_x - s->mb_stride],
  3056. block_cbp = mb_cbp >> (block_num * 4), bottom_cbp,
  3057. mb_is_intra = v->is_intra[s->mb_x - s->mb_stride],
  3058. block_is_intra = mb_is_intra >> (block_num * 4), bottom_is_intra;
  3059. int idx, linesize = block_num > 3 ? s->uvlinesize : s->linesize, ttblk;
  3060. uint8_t *dst;
  3061. if (block_num > 3) {
  3062. dst = s->dest[block_num - 3];
  3063. } else {
  3064. dst = s->dest[0] + (block_num & 1) * 8 + ((block_num & 2) * 4 - 8) * linesize;
  3065. }
  3066. if (s->mb_y != s->end_mb_y || block_num < 2) {
  3067. int16_t (*mv)[2];
  3068. int mv_stride;
  3069. if (block_num > 3) {
  3070. bottom_cbp = v->cbp[s->mb_x] >> (block_num * 4);
  3071. bottom_is_intra = v->is_intra[s->mb_x] >> (block_num * 4);
  3072. mv = &v->luma_mv[s->mb_x - s->mb_stride];
  3073. mv_stride = s->mb_stride;
  3074. } else {
  3075. bottom_cbp = (block_num < 2) ? (mb_cbp >> ((block_num + 2) * 4))
  3076. : (v->cbp[s->mb_x] >> ((block_num - 2) * 4));
  3077. bottom_is_intra = (block_num < 2) ? (mb_is_intra >> ((block_num + 2) * 4))
  3078. : (v->is_intra[s->mb_x] >> ((block_num - 2) * 4));
  3079. mv_stride = s->b8_stride;
  3080. mv = &s->current_picture.f.motion_val[0][s->block_index[block_num] - 2 * mv_stride];
  3081. }
  3082. if (bottom_is_intra & 1 || block_is_intra & 1 ||
  3083. mv[0][0] != mv[mv_stride][0] || mv[0][1] != mv[mv_stride][1]) {
  3084. v->vc1dsp.vc1_v_loop_filter8(dst, linesize, v->pq);
  3085. } else {
  3086. idx = ((bottom_cbp >> 2) | block_cbp) & 3;
  3087. if (idx == 3) {
  3088. v->vc1dsp.vc1_v_loop_filter8(dst, linesize, v->pq);
  3089. } else if (idx) {
  3090. if (idx == 1)
  3091. v->vc1dsp.vc1_v_loop_filter4(dst + 4, linesize, v->pq);
  3092. else
  3093. v->vc1dsp.vc1_v_loop_filter4(dst, linesize, v->pq);
  3094. }
  3095. }
  3096. }
  3097. dst -= 4 * linesize;
  3098. ttblk = (v->ttblk[s->mb_x - s->mb_stride] >> (block_num * 4)) & 0xF;
  3099. if (ttblk == TT_4X4 || ttblk == TT_8X4) {
  3100. idx = (block_cbp | (block_cbp >> 2)) & 3;
  3101. if (idx == 3) {
  3102. v->vc1dsp.vc1_v_loop_filter8(dst, linesize, v->pq);
  3103. } else if (idx) {
  3104. if (idx == 1)
  3105. v->vc1dsp.vc1_v_loop_filter4(dst + 4, linesize, v->pq);
  3106. else
  3107. v->vc1dsp.vc1_v_loop_filter4(dst, linesize, v->pq);
  3108. }
  3109. }
  3110. }
  3111. static av_always_inline void vc1_apply_p_h_loop_filter(VC1Context *v, int block_num)
  3112. {
  3113. MpegEncContext *s = &v->s;
  3114. int mb_cbp = v->cbp[s->mb_x - 1 - s->mb_stride],
  3115. block_cbp = mb_cbp >> (block_num * 4), right_cbp,
  3116. mb_is_intra = v->is_intra[s->mb_x - 1 - s->mb_stride],
  3117. block_is_intra = mb_is_intra >> (block_num * 4), right_is_intra;
  3118. int idx, linesize = block_num > 3 ? s->uvlinesize : s->linesize, ttblk;
  3119. uint8_t *dst;
  3120. if (block_num > 3) {
  3121. dst = s->dest[block_num - 3] - 8 * linesize;
  3122. } else {
  3123. dst = s->dest[0] + (block_num & 1) * 8 + ((block_num & 2) * 4 - 16) * linesize - 8;
  3124. }
  3125. if (s->mb_x != s->mb_width || !(block_num & 5)) {
  3126. int16_t (*mv)[2];
  3127. if (block_num > 3) {
  3128. right_cbp = v->cbp[s->mb_x - s->mb_stride] >> (block_num * 4);
  3129. right_is_intra = v->is_intra[s->mb_x - s->mb_stride] >> (block_num * 4);
  3130. mv = &v->luma_mv[s->mb_x - s->mb_stride - 1];
  3131. } else {
  3132. right_cbp = (block_num & 1) ? (v->cbp[s->mb_x - s->mb_stride] >> ((block_num - 1) * 4))
  3133. : (mb_cbp >> ((block_num + 1) * 4));
  3134. right_is_intra = (block_num & 1) ? (v->is_intra[s->mb_x - s->mb_stride] >> ((block_num - 1) * 4))
  3135. : (mb_is_intra >> ((block_num + 1) * 4));
  3136. mv = &s->current_picture.f.motion_val[0][s->block_index[block_num] - s->b8_stride * 2 - 2];
  3137. }
  3138. if (block_is_intra & 1 || right_is_intra & 1 || mv[0][0] != mv[1][0] || mv[0][1] != mv[1][1]) {
  3139. v->vc1dsp.vc1_h_loop_filter8(dst, linesize, v->pq);
  3140. } else {
  3141. idx = ((right_cbp >> 1) | block_cbp) & 5; // FIXME check
  3142. if (idx == 5) {
  3143. v->vc1dsp.vc1_h_loop_filter8(dst, linesize, v->pq);
  3144. } else if (idx) {
  3145. if (idx == 1)
  3146. v->vc1dsp.vc1_h_loop_filter4(dst + 4 * linesize, linesize, v->pq);
  3147. else
  3148. v->vc1dsp.vc1_h_loop_filter4(dst, linesize, v->pq);
  3149. }
  3150. }
  3151. }
  3152. dst -= 4;
  3153. ttblk = (v->ttblk[s->mb_x - s->mb_stride - 1] >> (block_num * 4)) & 0xf;
  3154. if (ttblk == TT_4X4 || ttblk == TT_4X8) {
  3155. idx = (block_cbp | (block_cbp >> 1)) & 5;
  3156. if (idx == 5) {
  3157. v->vc1dsp.vc1_h_loop_filter8(dst, linesize, v->pq);
  3158. } else if (idx) {
  3159. if (idx == 1)
  3160. v->vc1dsp.vc1_h_loop_filter4(dst + linesize * 4, linesize, v->pq);
  3161. else
  3162. v->vc1dsp.vc1_h_loop_filter4(dst, linesize, v->pq);
  3163. }
  3164. }
  3165. }
  3166. static void vc1_apply_p_loop_filter(VC1Context *v)
  3167. {
  3168. MpegEncContext *s = &v->s;
  3169. int i;
  3170. for (i = 0; i < 6; i++) {
  3171. vc1_apply_p_v_loop_filter(v, i);
  3172. }
  3173. /* V always precedes H, therefore we run H one MB before V;
  3174. * at the end of a row, we catch up to complete the row */
  3175. if (s->mb_x) {
  3176. for (i = 0; i < 6; i++) {
  3177. vc1_apply_p_h_loop_filter(v, i);
  3178. }
  3179. if (s->mb_x == s->mb_width - 1) {
  3180. s->mb_x++;
  3181. ff_update_block_index(s);
  3182. for (i = 0; i < 6; i++) {
  3183. vc1_apply_p_h_loop_filter(v, i);
  3184. }
  3185. }
  3186. }
  3187. }
  3188. /** Decode one P-frame MB
  3189. */
  3190. static int vc1_decode_p_mb(VC1Context *v)
  3191. {
  3192. MpegEncContext *s = &v->s;
  3193. GetBitContext *gb = &s->gb;
  3194. int i, j;
  3195. int mb_pos = s->mb_x + s->mb_y * s->mb_stride;
  3196. int cbp; /* cbp decoding stuff */
  3197. int mqdiff, mquant; /* MB quantization */
  3198. int ttmb = v->ttfrm; /* MB Transform type */
  3199. int mb_has_coeffs = 1; /* last_flag */
  3200. int dmv_x, dmv_y; /* Differential MV components */
  3201. int index, index1; /* LUT indexes */
  3202. int val, sign; /* temp values */
  3203. int first_block = 1;
  3204. int dst_idx, off;
  3205. int skipped, fourmv;
  3206. int block_cbp = 0, pat, block_tt = 0, block_intra = 0;
  3207. mquant = v->pq; /* lossy initialization */
  3208. if (v->mv_type_is_raw)
  3209. fourmv = get_bits1(gb);
  3210. else
  3211. fourmv = v->mv_type_mb_plane[mb_pos];
  3212. if (v->skip_is_raw)
  3213. skipped = get_bits1(gb);
  3214. else
  3215. skipped = v->s.mbskip_table[mb_pos];
  3216. if (!fourmv) { /* 1MV mode */
  3217. if (!skipped) {
  3218. GET_MVDATA(dmv_x, dmv_y);
  3219. if (s->mb_intra) {
  3220. s->current_picture.f.motion_val[1][s->block_index[0]][0] = 0;
  3221. s->current_picture.f.motion_val[1][s->block_index[0]][1] = 0;
  3222. }
  3223. s->current_picture.f.mb_type[mb_pos] = s->mb_intra ? MB_TYPE_INTRA : MB_TYPE_16x16;
  3224. vc1_pred_mv(v, 0, dmv_x, dmv_y, 1, v->range_x, v->range_y, v->mb_type[0], 0, 0);
  3225. /* FIXME Set DC val for inter block ? */
  3226. if (s->mb_intra && !mb_has_coeffs) {
  3227. GET_MQUANT();
  3228. s->ac_pred = get_bits1(gb);
  3229. cbp = 0;
  3230. } else if (mb_has_coeffs) {
  3231. if (s->mb_intra)
  3232. s->ac_pred = get_bits1(gb);
  3233. cbp = get_vlc2(&v->s.gb, v->cbpcy_vlc->table, VC1_CBPCY_P_VLC_BITS, 2);
  3234. GET_MQUANT();
  3235. } else {
  3236. mquant = v->pq;
  3237. cbp = 0;
  3238. }
  3239. s->current_picture.f.qscale_table[mb_pos] = mquant;
  3240. if (!v->ttmbf && !s->mb_intra && mb_has_coeffs)
  3241. ttmb = get_vlc2(gb, ff_vc1_ttmb_vlc[v->tt_index].table,
  3242. VC1_TTMB_VLC_BITS, 2);
  3243. if (!s->mb_intra) vc1_mc_1mv(v, 0);
  3244. dst_idx = 0;
  3245. for (i = 0; i < 6; i++) {
  3246. s->dc_val[0][s->block_index[i]] = 0;
  3247. dst_idx += i >> 2;
  3248. val = ((cbp >> (5 - i)) & 1);
  3249. off = (i & 4) ? 0 : ((i & 1) * 8 + (i & 2) * 4 * s->linesize);
  3250. v->mb_type[0][s->block_index[i]] = s->mb_intra;
  3251. if (s->mb_intra) {
  3252. /* check if prediction blocks A and C are available */
  3253. v->a_avail = v->c_avail = 0;
  3254. if (i == 2 || i == 3 || !s->first_slice_line)
  3255. v->a_avail = v->mb_type[0][s->block_index[i] - s->block_wrap[i]];
  3256. if (i == 1 || i == 3 || s->mb_x)
  3257. v->c_avail = v->mb_type[0][s->block_index[i] - 1];
  3258. vc1_decode_intra_block(v, s->block[i], i, val, mquant,
  3259. (i & 4) ? v->codingset2 : v->codingset);
  3260. if ((i>3) && (s->flags & CODEC_FLAG_GRAY))
  3261. continue;
  3262. v->vc1dsp.vc1_inv_trans_8x8(s->block[i]);
  3263. if (v->rangeredfrm)
  3264. for (j = 0; j < 64; j++)
  3265. s->block[i][j] <<= 1;
  3266. s->dsp.put_signed_pixels_clamped(s->block[i], s->dest[dst_idx] + off, i & 4 ? s->uvlinesize : s->linesize);
  3267. if (v->pq >= 9 && v->overlap) {
  3268. if (v->c_avail)
  3269. v->vc1dsp.vc1_h_overlap(s->dest[dst_idx] + off, i & 4 ? s->uvlinesize : s->linesize);
  3270. if (v->a_avail)
  3271. v->vc1dsp.vc1_v_overlap(s->dest[dst_idx] + off, i & 4 ? s->uvlinesize : s->linesize);
  3272. }
  3273. block_cbp |= 0xF << (i << 2);
  3274. block_intra |= 1 << i;
  3275. } else if (val) {
  3276. pat = vc1_decode_p_block(v, s->block[i], i, mquant, ttmb, first_block,
  3277. s->dest[dst_idx] + off, (i & 4) ? s->uvlinesize : s->linesize,
  3278. (i & 4) && (s->flags & CODEC_FLAG_GRAY), &block_tt);
  3279. block_cbp |= pat << (i << 2);
  3280. if (!v->ttmbf && ttmb < 8)
  3281. ttmb = -1;
  3282. first_block = 0;
  3283. }
  3284. }
  3285. } else { // skipped
  3286. s->mb_intra = 0;
  3287. for (i = 0; i < 6; i++) {
  3288. v->mb_type[0][s->block_index[i]] = 0;
  3289. s->dc_val[0][s->block_index[i]] = 0;
  3290. }
  3291. s->current_picture.f.mb_type[mb_pos] = MB_TYPE_SKIP;
  3292. s->current_picture.f.qscale_table[mb_pos] = 0;
  3293. vc1_pred_mv(v, 0, 0, 0, 1, v->range_x, v->range_y, v->mb_type[0], 0, 0);
  3294. vc1_mc_1mv(v, 0);
  3295. }
  3296. } else { // 4MV mode
  3297. if (!skipped /* unskipped MB */) {
  3298. int intra_count = 0, coded_inter = 0;
  3299. int is_intra[6], is_coded[6];
  3300. /* Get CBPCY */
  3301. cbp = get_vlc2(&v->s.gb, v->cbpcy_vlc->table, VC1_CBPCY_P_VLC_BITS, 2);
  3302. for (i = 0; i < 6; i++) {
  3303. val = ((cbp >> (5 - i)) & 1);
  3304. s->dc_val[0][s->block_index[i]] = 0;
  3305. s->mb_intra = 0;
  3306. if (i < 4) {
  3307. dmv_x = dmv_y = 0;
  3308. s->mb_intra = 0;
  3309. mb_has_coeffs = 0;
  3310. if (val) {
  3311. GET_MVDATA(dmv_x, dmv_y);
  3312. }
  3313. vc1_pred_mv(v, i, dmv_x, dmv_y, 0, v->range_x, v->range_y, v->mb_type[0], 0, 0);
  3314. if (!s->mb_intra)
  3315. vc1_mc_4mv_luma(v, i, 0);
  3316. intra_count += s->mb_intra;
  3317. is_intra[i] = s->mb_intra;
  3318. is_coded[i] = mb_has_coeffs;
  3319. }
  3320. if (i & 4) {
  3321. is_intra[i] = (intra_count >= 3);
  3322. is_coded[i] = val;
  3323. }
  3324. if (i == 4)
  3325. vc1_mc_4mv_chroma(v, 0);
  3326. v->mb_type[0][s->block_index[i]] = is_intra[i];
  3327. if (!coded_inter)
  3328. coded_inter = !is_intra[i] & is_coded[i];
  3329. }
  3330. // if there are no coded blocks then don't do anything more
  3331. dst_idx = 0;
  3332. if (!intra_count && !coded_inter)
  3333. goto end;
  3334. GET_MQUANT();
  3335. s->current_picture.f.qscale_table[mb_pos] = mquant;
  3336. /* test if block is intra and has pred */
  3337. {
  3338. int intrapred = 0;
  3339. for (i = 0; i < 6; i++)
  3340. if (is_intra[i]) {
  3341. if (((!s->first_slice_line || (i == 2 || i == 3)) && v->mb_type[0][s->block_index[i] - s->block_wrap[i]])
  3342. || ((s->mb_x || (i == 1 || i == 3)) && v->mb_type[0][s->block_index[i] - 1])) {
  3343. intrapred = 1;
  3344. break;
  3345. }
  3346. }
  3347. if (intrapred)
  3348. s->ac_pred = get_bits1(gb);
  3349. else
  3350. s->ac_pred = 0;
  3351. }
  3352. if (!v->ttmbf && coded_inter)
  3353. ttmb = get_vlc2(gb, ff_vc1_ttmb_vlc[v->tt_index].table, VC1_TTMB_VLC_BITS, 2);
  3354. for (i = 0; i < 6; i++) {
  3355. dst_idx += i >> 2;
  3356. off = (i & 4) ? 0 : ((i & 1) * 8 + (i & 2) * 4 * s->linesize);
  3357. s->mb_intra = is_intra[i];
  3358. if (is_intra[i]) {
  3359. /* check if prediction blocks A and C are available */
  3360. v->a_avail = v->c_avail = 0;
  3361. if (i == 2 || i == 3 || !s->first_slice_line)
  3362. v->a_avail = v->mb_type[0][s->block_index[i] - s->block_wrap[i]];
  3363. if (i == 1 || i == 3 || s->mb_x)
  3364. v->c_avail = v->mb_type[0][s->block_index[i] - 1];
  3365. vc1_decode_intra_block(v, s->block[i], i, is_coded[i], mquant,
  3366. (i & 4) ? v->codingset2 : v->codingset);
  3367. if ((i>3) && (s->flags & CODEC_FLAG_GRAY))
  3368. continue;
  3369. v->vc1dsp.vc1_inv_trans_8x8(s->block[i]);
  3370. if (v->rangeredfrm)
  3371. for (j = 0; j < 64; j++)
  3372. s->block[i][j] <<= 1;
  3373. s->dsp.put_signed_pixels_clamped(s->block[i], s->dest[dst_idx] + off,
  3374. (i & 4) ? s->uvlinesize : s->linesize);
  3375. if (v->pq >= 9 && v->overlap) {
  3376. if (v->c_avail)
  3377. v->vc1dsp.vc1_h_overlap(s->dest[dst_idx] + off, i & 4 ? s->uvlinesize : s->linesize);
  3378. if (v->a_avail)
  3379. v->vc1dsp.vc1_v_overlap(s->dest[dst_idx] + off, i & 4 ? s->uvlinesize : s->linesize);
  3380. }
  3381. block_cbp |= 0xF << (i << 2);
  3382. block_intra |= 1 << i;
  3383. } else if (is_coded[i]) {
  3384. pat = vc1_decode_p_block(v, s->block[i], i, mquant, ttmb,
  3385. first_block, s->dest[dst_idx] + off,
  3386. (i & 4) ? s->uvlinesize : s->linesize,
  3387. (i & 4) && (s->flags & CODEC_FLAG_GRAY),
  3388. &block_tt);
  3389. block_cbp |= pat << (i << 2);
  3390. if (!v->ttmbf && ttmb < 8)
  3391. ttmb = -1;
  3392. first_block = 0;
  3393. }
  3394. }
  3395. } else { // skipped MB
  3396. s->mb_intra = 0;
  3397. s->current_picture.f.qscale_table[mb_pos] = 0;
  3398. for (i = 0; i < 6; i++) {
  3399. v->mb_type[0][s->block_index[i]] = 0;
  3400. s->dc_val[0][s->block_index[i]] = 0;
  3401. }
  3402. for (i = 0; i < 4; i++) {
  3403. vc1_pred_mv(v, i, 0, 0, 0, v->range_x, v->range_y, v->mb_type[0], 0, 0);
  3404. vc1_mc_4mv_luma(v, i, 0);
  3405. }
  3406. vc1_mc_4mv_chroma(v, 0);
  3407. s->current_picture.f.qscale_table[mb_pos] = 0;
  3408. }
  3409. }
  3410. end:
  3411. v->cbp[s->mb_x] = block_cbp;
  3412. v->ttblk[s->mb_x] = block_tt;
  3413. v->is_intra[s->mb_x] = block_intra;
  3414. return 0;
  3415. }
  3416. /* Decode one macroblock in an interlaced frame p picture */
  3417. static int vc1_decode_p_mb_intfr(VC1Context *v)
  3418. {
  3419. MpegEncContext *s = &v->s;
  3420. GetBitContext *gb = &s->gb;
  3421. int i;
  3422. int mb_pos = s->mb_x + s->mb_y * s->mb_stride;
  3423. int cbp = 0; /* cbp decoding stuff */
  3424. int mqdiff, mquant; /* MB quantization */
  3425. int ttmb = v->ttfrm; /* MB Transform type */
  3426. int mb_has_coeffs = 1; /* last_flag */
  3427. int dmv_x, dmv_y; /* Differential MV components */
  3428. int val; /* temp value */
  3429. int first_block = 1;
  3430. int dst_idx, off;
  3431. int skipped, fourmv = 0, twomv = 0;
  3432. int block_cbp = 0, pat, block_tt = 0;
  3433. int idx_mbmode = 0, mvbp;
  3434. int stride_y, fieldtx;
  3435. mquant = v->pq; /* Lossy initialization */
  3436. if (v->skip_is_raw)
  3437. skipped = get_bits1(gb);
  3438. else
  3439. skipped = v->s.mbskip_table[mb_pos];
  3440. if (!skipped) {
  3441. if (v->fourmvswitch)
  3442. idx_mbmode = get_vlc2(gb, v->mbmode_vlc->table, VC1_INTFR_4MV_MBMODE_VLC_BITS, 2); // try getting this done
  3443. else
  3444. idx_mbmode = get_vlc2(gb, v->mbmode_vlc->table, VC1_INTFR_NON4MV_MBMODE_VLC_BITS, 2); // in a single line
  3445. switch (ff_vc1_mbmode_intfrp[v->fourmvswitch][idx_mbmode][0]) {
  3446. /* store the motion vector type in a flag (useful later) */
  3447. case MV_PMODE_INTFR_4MV:
  3448. fourmv = 1;
  3449. v->blk_mv_type[s->block_index[0]] = 0;
  3450. v->blk_mv_type[s->block_index[1]] = 0;
  3451. v->blk_mv_type[s->block_index[2]] = 0;
  3452. v->blk_mv_type[s->block_index[3]] = 0;
  3453. break;
  3454. case MV_PMODE_INTFR_4MV_FIELD:
  3455. fourmv = 1;
  3456. v->blk_mv_type[s->block_index[0]] = 1;
  3457. v->blk_mv_type[s->block_index[1]] = 1;
  3458. v->blk_mv_type[s->block_index[2]] = 1;
  3459. v->blk_mv_type[s->block_index[3]] = 1;
  3460. break;
  3461. case MV_PMODE_INTFR_2MV_FIELD:
  3462. twomv = 1;
  3463. v->blk_mv_type[s->block_index[0]] = 1;
  3464. v->blk_mv_type[s->block_index[1]] = 1;
  3465. v->blk_mv_type[s->block_index[2]] = 1;
  3466. v->blk_mv_type[s->block_index[3]] = 1;
  3467. break;
  3468. case MV_PMODE_INTFR_1MV:
  3469. v->blk_mv_type[s->block_index[0]] = 0;
  3470. v->blk_mv_type[s->block_index[1]] = 0;
  3471. v->blk_mv_type[s->block_index[2]] = 0;
  3472. v->blk_mv_type[s->block_index[3]] = 0;
  3473. break;
  3474. }
  3475. if (ff_vc1_mbmode_intfrp[v->fourmvswitch][idx_mbmode][0] == MV_PMODE_INTFR_INTRA) { // intra MB
  3476. s->current_picture.f.motion_val[1][s->block_index[0]][0] = 0;
  3477. s->current_picture.f.motion_val[1][s->block_index[0]][1] = 0;
  3478. s->current_picture.f.mb_type[mb_pos] = MB_TYPE_INTRA;
  3479. s->mb_intra = v->is_intra[s->mb_x] = 1;
  3480. for (i = 0; i < 6; i++)
  3481. v->mb_type[0][s->block_index[i]] = 1;
  3482. fieldtx = v->fieldtx_plane[mb_pos] = get_bits1(gb);
  3483. mb_has_coeffs = get_bits1(gb);
  3484. if (mb_has_coeffs)
  3485. cbp = 1 + get_vlc2(&v->s.gb, v->cbpcy_vlc->table, VC1_CBPCY_P_VLC_BITS, 2);
  3486. v->s.ac_pred = v->acpred_plane[mb_pos] = get_bits1(gb);
  3487. GET_MQUANT();
  3488. s->current_picture.f.qscale_table[mb_pos] = mquant;
  3489. /* Set DC scale - y and c use the same (not sure if necessary here) */
  3490. s->y_dc_scale = s->y_dc_scale_table[mquant];
  3491. s->c_dc_scale = s->c_dc_scale_table[mquant];
  3492. dst_idx = 0;
  3493. for (i = 0; i < 6; i++) {
  3494. s->dc_val[0][s->block_index[i]] = 0;
  3495. dst_idx += i >> 2;
  3496. val = ((cbp >> (5 - i)) & 1);
  3497. v->mb_type[0][s->block_index[i]] = s->mb_intra;
  3498. v->a_avail = v->c_avail = 0;
  3499. if (i == 2 || i == 3 || !s->first_slice_line)
  3500. v->a_avail = v->mb_type[0][s->block_index[i] - s->block_wrap[i]];
  3501. if (i == 1 || i == 3 || s->mb_x)
  3502. v->c_avail = v->mb_type[0][s->block_index[i] - 1];
  3503. vc1_decode_intra_block(v, s->block[i], i, val, mquant,
  3504. (i & 4) ? v->codingset2 : v->codingset);
  3505. if ((i>3) && (s->flags & CODEC_FLAG_GRAY)) continue;
  3506. v->vc1dsp.vc1_inv_trans_8x8(s->block[i]);
  3507. if (i < 4) {
  3508. stride_y = s->linesize << fieldtx;
  3509. off = (fieldtx) ? ((i & 1) * 8) + ((i & 2) >> 1) * s->linesize : (i & 1) * 8 + 4 * (i & 2) * s->linesize;
  3510. } else {
  3511. stride_y = s->uvlinesize;
  3512. off = 0;
  3513. }
  3514. s->dsp.put_signed_pixels_clamped(s->block[i], s->dest[dst_idx] + off, stride_y);
  3515. //TODO: loop filter
  3516. }
  3517. } else { // inter MB
  3518. mb_has_coeffs = ff_vc1_mbmode_intfrp[v->fourmvswitch][idx_mbmode][3];
  3519. if (mb_has_coeffs)
  3520. cbp = 1 + get_vlc2(&v->s.gb, v->cbpcy_vlc->table, VC1_CBPCY_P_VLC_BITS, 2);
  3521. if (ff_vc1_mbmode_intfrp[v->fourmvswitch][idx_mbmode][0] == MV_PMODE_INTFR_2MV_FIELD) {
  3522. v->twomvbp = get_vlc2(gb, v->twomvbp_vlc->table, VC1_2MV_BLOCK_PATTERN_VLC_BITS, 1);
  3523. } else {
  3524. if ((ff_vc1_mbmode_intfrp[v->fourmvswitch][idx_mbmode][0] == MV_PMODE_INTFR_4MV)
  3525. || (ff_vc1_mbmode_intfrp[v->fourmvswitch][idx_mbmode][0] == MV_PMODE_INTFR_4MV_FIELD)) {
  3526. v->fourmvbp = get_vlc2(gb, v->fourmvbp_vlc->table, VC1_4MV_BLOCK_PATTERN_VLC_BITS, 1);
  3527. }
  3528. }
  3529. s->mb_intra = v->is_intra[s->mb_x] = 0;
  3530. for (i = 0; i < 6; i++)
  3531. v->mb_type[0][s->block_index[i]] = 0;
  3532. fieldtx = v->fieldtx_plane[mb_pos] = ff_vc1_mbmode_intfrp[v->fourmvswitch][idx_mbmode][1];
  3533. /* for all motion vector read MVDATA and motion compensate each block */
  3534. dst_idx = 0;
  3535. if (fourmv) {
  3536. mvbp = v->fourmvbp;
  3537. for (i = 0; i < 6; i++) {
  3538. if (i < 4) {
  3539. dmv_x = dmv_y = 0;
  3540. val = ((mvbp >> (3 - i)) & 1);
  3541. if (val) {
  3542. get_mvdata_interlaced(v, &dmv_x, &dmv_y, 0);
  3543. }
  3544. vc1_pred_mv_intfr(v, i, dmv_x, dmv_y, 0, v->range_x, v->range_y, v->mb_type[0]);
  3545. vc1_mc_4mv_luma(v, i, 0);
  3546. } else if (i == 4) {
  3547. vc1_mc_4mv_chroma4(v);
  3548. }
  3549. }
  3550. } else if (twomv) {
  3551. mvbp = v->twomvbp;
  3552. dmv_x = dmv_y = 0;
  3553. if (mvbp & 2) {
  3554. get_mvdata_interlaced(v, &dmv_x, &dmv_y, 0);
  3555. }
  3556. vc1_pred_mv_intfr(v, 0, dmv_x, dmv_y, 2, v->range_x, v->range_y, v->mb_type[0]);
  3557. vc1_mc_4mv_luma(v, 0, 0);
  3558. vc1_mc_4mv_luma(v, 1, 0);
  3559. dmv_x = dmv_y = 0;
  3560. if (mvbp & 1) {
  3561. get_mvdata_interlaced(v, &dmv_x, &dmv_y, 0);
  3562. }
  3563. vc1_pred_mv_intfr(v, 2, dmv_x, dmv_y, 2, v->range_x, v->range_y, v->mb_type[0]);
  3564. vc1_mc_4mv_luma(v, 2, 0);
  3565. vc1_mc_4mv_luma(v, 3, 0);
  3566. vc1_mc_4mv_chroma4(v);
  3567. } else {
  3568. mvbp = ff_vc1_mbmode_intfrp[v->fourmvswitch][idx_mbmode][2];
  3569. dmv_x = dmv_y = 0;
  3570. if (mvbp) {
  3571. get_mvdata_interlaced(v, &dmv_x, &dmv_y, 0);
  3572. }
  3573. vc1_pred_mv_intfr(v, 0, dmv_x, dmv_y, 1, v->range_x, v->range_y, v->mb_type[0]);
  3574. vc1_mc_1mv(v, 0);
  3575. }
  3576. if (cbp)
  3577. GET_MQUANT(); // p. 227
  3578. s->current_picture.f.qscale_table[mb_pos] = mquant;
  3579. if (!v->ttmbf && cbp)
  3580. ttmb = get_vlc2(gb, ff_vc1_ttmb_vlc[v->tt_index].table, VC1_TTMB_VLC_BITS, 2);
  3581. for (i = 0; i < 6; i++) {
  3582. s->dc_val[0][s->block_index[i]] = 0;
  3583. dst_idx += i >> 2;
  3584. val = ((cbp >> (5 - i)) & 1);
  3585. if (!fieldtx)
  3586. off = (i & 4) ? 0 : ((i & 1) * 8 + (i & 2) * 4 * s->linesize);
  3587. else
  3588. off = (i & 4) ? 0 : ((i & 1) * 8 + ((i > 1) * s->linesize));
  3589. if (val) {
  3590. pat = vc1_decode_p_block(v, s->block[i], i, mquant, ttmb,
  3591. first_block, s->dest[dst_idx] + off,
  3592. (i & 4) ? s->uvlinesize : (s->linesize << fieldtx),
  3593. (i & 4) && (s->flags & CODEC_FLAG_GRAY), &block_tt);
  3594. block_cbp |= pat << (i << 2);
  3595. if (!v->ttmbf && ttmb < 8)
  3596. ttmb = -1;
  3597. first_block = 0;
  3598. }
  3599. }
  3600. }
  3601. } else { // skipped
  3602. s->mb_intra = v->is_intra[s->mb_x] = 0;
  3603. for (i = 0; i < 6; i++) {
  3604. v->mb_type[0][s->block_index[i]] = 0;
  3605. s->dc_val[0][s->block_index[i]] = 0;
  3606. }
  3607. s->current_picture.f.mb_type[mb_pos] = MB_TYPE_SKIP;
  3608. s->current_picture.f.qscale_table[mb_pos] = 0;
  3609. v->blk_mv_type[s->block_index[0]] = 0;
  3610. v->blk_mv_type[s->block_index[1]] = 0;
  3611. v->blk_mv_type[s->block_index[2]] = 0;
  3612. v->blk_mv_type[s->block_index[3]] = 0;
  3613. vc1_pred_mv_intfr(v, 0, 0, 0, 1, v->range_x, v->range_y, v->mb_type[0]);
  3614. vc1_mc_1mv(v, 0);
  3615. }
  3616. if (s->mb_x == s->mb_width - 1)
  3617. memmove(v->is_intra_base, v->is_intra, sizeof(v->is_intra_base[0])*s->mb_stride);
  3618. return 0;
  3619. }
  3620. static int vc1_decode_p_mb_intfi(VC1Context *v)
  3621. {
  3622. MpegEncContext *s = &v->s;
  3623. GetBitContext *gb = &s->gb;
  3624. int i;
  3625. int mb_pos = s->mb_x + s->mb_y * s->mb_stride;
  3626. int cbp = 0; /* cbp decoding stuff */
  3627. int mqdiff, mquant; /* MB quantization */
  3628. int ttmb = v->ttfrm; /* MB Transform type */
  3629. int mb_has_coeffs = 1; /* last_flag */
  3630. int dmv_x, dmv_y; /* Differential MV components */
  3631. int val; /* temp values */
  3632. int first_block = 1;
  3633. int dst_idx, off;
  3634. int pred_flag = 0;
  3635. int block_cbp = 0, pat, block_tt = 0;
  3636. int idx_mbmode = 0;
  3637. mquant = v->pq; /* Lossy initialization */
  3638. idx_mbmode = get_vlc2(gb, v->mbmode_vlc->table, VC1_IF_MBMODE_VLC_BITS, 2);
  3639. if (idx_mbmode <= 1) { // intra MB
  3640. s->mb_intra = v->is_intra[s->mb_x] = 1;
  3641. s->current_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][0] = 0;
  3642. s->current_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][1] = 0;
  3643. s->current_picture.f.mb_type[mb_pos + v->mb_off] = MB_TYPE_INTRA;
  3644. GET_MQUANT();
  3645. s->current_picture.f.qscale_table[mb_pos] = mquant;
  3646. /* Set DC scale - y and c use the same (not sure if necessary here) */
  3647. s->y_dc_scale = s->y_dc_scale_table[mquant];
  3648. s->c_dc_scale = s->c_dc_scale_table[mquant];
  3649. v->s.ac_pred = v->acpred_plane[mb_pos] = get_bits1(gb);
  3650. mb_has_coeffs = idx_mbmode & 1;
  3651. if (mb_has_coeffs)
  3652. cbp = 1 + get_vlc2(&v->s.gb, v->cbpcy_vlc->table, VC1_ICBPCY_VLC_BITS, 2);
  3653. dst_idx = 0;
  3654. for (i = 0; i < 6; i++) {
  3655. s->dc_val[0][s->block_index[i]] = 0;
  3656. v->mb_type[0][s->block_index[i]] = 1;
  3657. dst_idx += i >> 2;
  3658. val = ((cbp >> (5 - i)) & 1);
  3659. v->a_avail = v->c_avail = 0;
  3660. if (i == 2 || i == 3 || !s->first_slice_line)
  3661. v->a_avail = v->mb_type[0][s->block_index[i] - s->block_wrap[i]];
  3662. if (i == 1 || i == 3 || s->mb_x)
  3663. v->c_avail = v->mb_type[0][s->block_index[i] - 1];
  3664. vc1_decode_intra_block(v, s->block[i], i, val, mquant,
  3665. (i & 4) ? v->codingset2 : v->codingset);
  3666. if ((i>3) && (s->flags & CODEC_FLAG_GRAY))
  3667. continue;
  3668. v->vc1dsp.vc1_inv_trans_8x8(s->block[i]);
  3669. off = (i & 4) ? 0 : ((i & 1) * 8 + (i & 2) * 4 * s->linesize);
  3670. s->dsp.put_signed_pixels_clamped(s->block[i], s->dest[dst_idx] + off, (i & 4) ? s->uvlinesize : s->linesize);
  3671. // TODO: loop filter
  3672. }
  3673. } else {
  3674. s->mb_intra = v->is_intra[s->mb_x] = 0;
  3675. s->current_picture.f.mb_type[mb_pos + v->mb_off] = MB_TYPE_16x16;
  3676. for (i = 0; i < 6; i++) v->mb_type[0][s->block_index[i]] = 0;
  3677. if (idx_mbmode <= 5) { // 1-MV
  3678. dmv_x = dmv_y = pred_flag = 0;
  3679. if (idx_mbmode & 1) {
  3680. get_mvdata_interlaced(v, &dmv_x, &dmv_y, &pred_flag);
  3681. }
  3682. vc1_pred_mv(v, 0, dmv_x, dmv_y, 1, v->range_x, v->range_y, v->mb_type[0], pred_flag, 0);
  3683. vc1_mc_1mv(v, 0);
  3684. mb_has_coeffs = !(idx_mbmode & 2);
  3685. } else { // 4-MV
  3686. v->fourmvbp = get_vlc2(gb, v->fourmvbp_vlc->table, VC1_4MV_BLOCK_PATTERN_VLC_BITS, 1);
  3687. for (i = 0; i < 6; i++) {
  3688. if (i < 4) {
  3689. dmv_x = dmv_y = pred_flag = 0;
  3690. val = ((v->fourmvbp >> (3 - i)) & 1);
  3691. if (val) {
  3692. get_mvdata_interlaced(v, &dmv_x, &dmv_y, &pred_flag);
  3693. }
  3694. vc1_pred_mv(v, i, dmv_x, dmv_y, 0, v->range_x, v->range_y, v->mb_type[0], pred_flag, 0);
  3695. vc1_mc_4mv_luma(v, i, 0);
  3696. } else if (i == 4)
  3697. vc1_mc_4mv_chroma(v, 0);
  3698. }
  3699. mb_has_coeffs = idx_mbmode & 1;
  3700. }
  3701. if (mb_has_coeffs)
  3702. cbp = 1 + get_vlc2(&v->s.gb, v->cbpcy_vlc->table, VC1_CBPCY_P_VLC_BITS, 2);
  3703. if (cbp) {
  3704. GET_MQUANT();
  3705. }
  3706. s->current_picture.f.qscale_table[mb_pos] = mquant;
  3707. if (!v->ttmbf && cbp) {
  3708. ttmb = get_vlc2(gb, ff_vc1_ttmb_vlc[v->tt_index].table, VC1_TTMB_VLC_BITS, 2);
  3709. }
  3710. dst_idx = 0;
  3711. for (i = 0; i < 6; i++) {
  3712. s->dc_val[0][s->block_index[i]] = 0;
  3713. dst_idx += i >> 2;
  3714. val = ((cbp >> (5 - i)) & 1);
  3715. off = (i & 4) ? 0 : (i & 1) * 8 + (i & 2) * 4 * s->linesize;
  3716. if (val) {
  3717. pat = vc1_decode_p_block(v, s->block[i], i, mquant, ttmb,
  3718. first_block, s->dest[dst_idx] + off,
  3719. (i & 4) ? s->uvlinesize : s->linesize,
  3720. (i & 4) && (s->flags & CODEC_FLAG_GRAY),
  3721. &block_tt);
  3722. block_cbp |= pat << (i << 2);
  3723. if (!v->ttmbf && ttmb < 8) ttmb = -1;
  3724. first_block = 0;
  3725. }
  3726. }
  3727. }
  3728. if (s->mb_x == s->mb_width - 1)
  3729. memmove(v->is_intra_base, v->is_intra, sizeof(v->is_intra_base[0]) * s->mb_stride);
  3730. return 0;
  3731. }
  3732. /** Decode one B-frame MB (in Main profile)
  3733. */
  3734. static void vc1_decode_b_mb(VC1Context *v)
  3735. {
  3736. MpegEncContext *s = &v->s;
  3737. GetBitContext *gb = &s->gb;
  3738. int i, j;
  3739. int mb_pos = s->mb_x + s->mb_y * s->mb_stride;
  3740. int cbp = 0; /* cbp decoding stuff */
  3741. int mqdiff, mquant; /* MB quantization */
  3742. int ttmb = v->ttfrm; /* MB Transform type */
  3743. int mb_has_coeffs = 0; /* last_flag */
  3744. int index, index1; /* LUT indexes */
  3745. int val, sign; /* temp values */
  3746. int first_block = 1;
  3747. int dst_idx, off;
  3748. int skipped, direct;
  3749. int dmv_x[2], dmv_y[2];
  3750. int bmvtype = BMV_TYPE_BACKWARD;
  3751. mquant = v->pq; /* lossy initialization */
  3752. s->mb_intra = 0;
  3753. if (v->dmb_is_raw)
  3754. direct = get_bits1(gb);
  3755. else
  3756. direct = v->direct_mb_plane[mb_pos];
  3757. if (v->skip_is_raw)
  3758. skipped = get_bits1(gb);
  3759. else
  3760. skipped = v->s.mbskip_table[mb_pos];
  3761. dmv_x[0] = dmv_x[1] = dmv_y[0] = dmv_y[1] = 0;
  3762. for (i = 0; i < 6; i++) {
  3763. v->mb_type[0][s->block_index[i]] = 0;
  3764. s->dc_val[0][s->block_index[i]] = 0;
  3765. }
  3766. s->current_picture.f.qscale_table[mb_pos] = 0;
  3767. if (!direct) {
  3768. if (!skipped) {
  3769. GET_MVDATA(dmv_x[0], dmv_y[0]);
  3770. dmv_x[1] = dmv_x[0];
  3771. dmv_y[1] = dmv_y[0];
  3772. }
  3773. if (skipped || !s->mb_intra) {
  3774. bmvtype = decode012(gb);
  3775. switch (bmvtype) {
  3776. case 0:
  3777. bmvtype = (v->bfraction >= (B_FRACTION_DEN/2)) ? BMV_TYPE_BACKWARD : BMV_TYPE_FORWARD;
  3778. break;
  3779. case 1:
  3780. bmvtype = (v->bfraction >= (B_FRACTION_DEN/2)) ? BMV_TYPE_FORWARD : BMV_TYPE_BACKWARD;
  3781. break;
  3782. case 2:
  3783. bmvtype = BMV_TYPE_INTERPOLATED;
  3784. dmv_x[0] = dmv_y[0] = 0;
  3785. }
  3786. }
  3787. }
  3788. for (i = 0; i < 6; i++)
  3789. v->mb_type[0][s->block_index[i]] = s->mb_intra;
  3790. if (skipped) {
  3791. if (direct)
  3792. bmvtype = BMV_TYPE_INTERPOLATED;
  3793. vc1_pred_b_mv(v, dmv_x, dmv_y, direct, bmvtype);
  3794. vc1_b_mc(v, dmv_x, dmv_y, direct, bmvtype);
  3795. return;
  3796. }
  3797. if (direct) {
  3798. cbp = get_vlc2(&v->s.gb, v->cbpcy_vlc->table, VC1_CBPCY_P_VLC_BITS, 2);
  3799. GET_MQUANT();
  3800. s->mb_intra = 0;
  3801. s->current_picture.f.qscale_table[mb_pos] = mquant;
  3802. if (!v->ttmbf)
  3803. ttmb = get_vlc2(gb, ff_vc1_ttmb_vlc[v->tt_index].table, VC1_TTMB_VLC_BITS, 2);
  3804. dmv_x[0] = dmv_y[0] = dmv_x[1] = dmv_y[1] = 0;
  3805. vc1_pred_b_mv(v, dmv_x, dmv_y, direct, bmvtype);
  3806. vc1_b_mc(v, dmv_x, dmv_y, direct, bmvtype);
  3807. } else {
  3808. if (!mb_has_coeffs && !s->mb_intra) {
  3809. /* no coded blocks - effectively skipped */
  3810. vc1_pred_b_mv(v, dmv_x, dmv_y, direct, bmvtype);
  3811. vc1_b_mc(v, dmv_x, dmv_y, direct, bmvtype);
  3812. return;
  3813. }
  3814. if (s->mb_intra && !mb_has_coeffs) {
  3815. GET_MQUANT();
  3816. s->current_picture.f.qscale_table[mb_pos] = mquant;
  3817. s->ac_pred = get_bits1(gb);
  3818. cbp = 0;
  3819. vc1_pred_b_mv(v, dmv_x, dmv_y, direct, bmvtype);
  3820. } else {
  3821. if (bmvtype == BMV_TYPE_INTERPOLATED) {
  3822. GET_MVDATA(dmv_x[0], dmv_y[0]);
  3823. if (!mb_has_coeffs) {
  3824. /* interpolated skipped block */
  3825. vc1_pred_b_mv(v, dmv_x, dmv_y, direct, bmvtype);
  3826. vc1_b_mc(v, dmv_x, dmv_y, direct, bmvtype);
  3827. return;
  3828. }
  3829. }
  3830. vc1_pred_b_mv(v, dmv_x, dmv_y, direct, bmvtype);
  3831. if (!s->mb_intra) {
  3832. vc1_b_mc(v, dmv_x, dmv_y, direct, bmvtype);
  3833. }
  3834. if (s->mb_intra)
  3835. s->ac_pred = get_bits1(gb);
  3836. cbp = get_vlc2(&v->s.gb, v->cbpcy_vlc->table, VC1_CBPCY_P_VLC_BITS, 2);
  3837. GET_MQUANT();
  3838. s->current_picture.f.qscale_table[mb_pos] = mquant;
  3839. if (!v->ttmbf && !s->mb_intra && mb_has_coeffs)
  3840. ttmb = get_vlc2(gb, ff_vc1_ttmb_vlc[v->tt_index].table, VC1_TTMB_VLC_BITS, 2);
  3841. }
  3842. }
  3843. dst_idx = 0;
  3844. for (i = 0; i < 6; i++) {
  3845. s->dc_val[0][s->block_index[i]] = 0;
  3846. dst_idx += i >> 2;
  3847. val = ((cbp >> (5 - i)) & 1);
  3848. off = (i & 4) ? 0 : ((i & 1) * 8 + (i & 2) * 4 * s->linesize);
  3849. v->mb_type[0][s->block_index[i]] = s->mb_intra;
  3850. if (s->mb_intra) {
  3851. /* check if prediction blocks A and C are available */
  3852. v->a_avail = v->c_avail = 0;
  3853. if (i == 2 || i == 3 || !s->first_slice_line)
  3854. v->a_avail = v->mb_type[0][s->block_index[i] - s->block_wrap[i]];
  3855. if (i == 1 || i == 3 || s->mb_x)
  3856. v->c_avail = v->mb_type[0][s->block_index[i] - 1];
  3857. vc1_decode_intra_block(v, s->block[i], i, val, mquant,
  3858. (i & 4) ? v->codingset2 : v->codingset);
  3859. if ((i>3) && (s->flags & CODEC_FLAG_GRAY))
  3860. continue;
  3861. v->vc1dsp.vc1_inv_trans_8x8(s->block[i]);
  3862. if (v->rangeredfrm)
  3863. for (j = 0; j < 64; j++)
  3864. s->block[i][j] <<= 1;
  3865. s->dsp.put_signed_pixels_clamped(s->block[i], s->dest[dst_idx] + off, i & 4 ? s->uvlinesize : s->linesize);
  3866. } else if (val) {
  3867. vc1_decode_p_block(v, s->block[i], i, mquant, ttmb,
  3868. first_block, s->dest[dst_idx] + off,
  3869. (i & 4) ? s->uvlinesize : s->linesize,
  3870. (i & 4) && (s->flags & CODEC_FLAG_GRAY), NULL);
  3871. if (!v->ttmbf && ttmb < 8)
  3872. ttmb = -1;
  3873. first_block = 0;
  3874. }
  3875. }
  3876. }
  3877. /** Decode one B-frame MB (in interlaced field B picture)
  3878. */
  3879. static void vc1_decode_b_mb_intfi(VC1Context *v)
  3880. {
  3881. MpegEncContext *s = &v->s;
  3882. GetBitContext *gb = &s->gb;
  3883. int i, j;
  3884. int mb_pos = s->mb_x + s->mb_y * s->mb_stride;
  3885. int cbp = 0; /* cbp decoding stuff */
  3886. int mqdiff, mquant; /* MB quantization */
  3887. int ttmb = v->ttfrm; /* MB Transform type */
  3888. int mb_has_coeffs = 0; /* last_flag */
  3889. int val; /* temp value */
  3890. int first_block = 1;
  3891. int dst_idx, off;
  3892. int fwd;
  3893. int dmv_x[2], dmv_y[2], pred_flag[2];
  3894. int bmvtype = BMV_TYPE_BACKWARD;
  3895. int idx_mbmode, interpmvp;
  3896. mquant = v->pq; /* Lossy initialization */
  3897. s->mb_intra = 0;
  3898. idx_mbmode = get_vlc2(gb, v->mbmode_vlc->table, VC1_IF_MBMODE_VLC_BITS, 2);
  3899. if (idx_mbmode <= 1) { // intra MB
  3900. s->mb_intra = v->is_intra[s->mb_x] = 1;
  3901. s->current_picture.f.motion_val[1][s->block_index[0]][0] = 0;
  3902. s->current_picture.f.motion_val[1][s->block_index[0]][1] = 0;
  3903. s->current_picture.f.mb_type[mb_pos + v->mb_off] = MB_TYPE_INTRA;
  3904. GET_MQUANT();
  3905. s->current_picture.f.qscale_table[mb_pos] = mquant;
  3906. /* Set DC scale - y and c use the same (not sure if necessary here) */
  3907. s->y_dc_scale = s->y_dc_scale_table[mquant];
  3908. s->c_dc_scale = s->c_dc_scale_table[mquant];
  3909. v->s.ac_pred = v->acpred_plane[mb_pos] = get_bits1(gb);
  3910. mb_has_coeffs = idx_mbmode & 1;
  3911. if (mb_has_coeffs)
  3912. cbp = 1 + get_vlc2(&v->s.gb, v->cbpcy_vlc->table, VC1_ICBPCY_VLC_BITS, 2);
  3913. dst_idx = 0;
  3914. for (i = 0; i < 6; i++) {
  3915. s->dc_val[0][s->block_index[i]] = 0;
  3916. dst_idx += i >> 2;
  3917. val = ((cbp >> (5 - i)) & 1);
  3918. v->mb_type[0][s->block_index[i]] = s->mb_intra;
  3919. v->a_avail = v->c_avail = 0;
  3920. if (i == 2 || i == 3 || !s->first_slice_line)
  3921. v->a_avail = v->mb_type[0][s->block_index[i] - s->block_wrap[i]];
  3922. if (i == 1 || i == 3 || s->mb_x)
  3923. v->c_avail = v->mb_type[0][s->block_index[i] - 1];
  3924. vc1_decode_intra_block(v, s->block[i], i, val, mquant,
  3925. (i & 4) ? v->codingset2 : v->codingset);
  3926. if ((i>3) && (s->flags & CODEC_FLAG_GRAY))
  3927. continue;
  3928. v->vc1dsp.vc1_inv_trans_8x8(s->block[i]);
  3929. if (v->rangeredfrm)
  3930. for (j = 0; j < 64; j++)
  3931. s->block[i][j] <<= 1;
  3932. off = (i & 4) ? 0 : ((i & 1) * 8 + (i & 2) * 4 * s->linesize);
  3933. s->dsp.put_signed_pixels_clamped(s->block[i], s->dest[dst_idx] + off, (i & 4) ? s->uvlinesize : s->linesize);
  3934. // TODO: yet to perform loop filter
  3935. }
  3936. } else {
  3937. s->mb_intra = v->is_intra[s->mb_x] = 0;
  3938. s->current_picture.f.mb_type[mb_pos + v->mb_off] = MB_TYPE_16x16;
  3939. for (i = 0; i < 6; i++) v->mb_type[0][s->block_index[i]] = 0;
  3940. if (v->fmb_is_raw)
  3941. fwd = v->forward_mb_plane[mb_pos] = get_bits1(gb);
  3942. else
  3943. fwd = v->forward_mb_plane[mb_pos];
  3944. if (idx_mbmode <= 5) { // 1-MV
  3945. dmv_x[0] = dmv_x[1] = dmv_y[0] = dmv_y[1] = 0;
  3946. pred_flag[0] = pred_flag[1] = 0;
  3947. if (fwd)
  3948. bmvtype = BMV_TYPE_FORWARD;
  3949. else {
  3950. bmvtype = decode012(gb);
  3951. switch (bmvtype) {
  3952. case 0:
  3953. bmvtype = BMV_TYPE_BACKWARD;
  3954. break;
  3955. case 1:
  3956. bmvtype = BMV_TYPE_DIRECT;
  3957. break;
  3958. case 2:
  3959. bmvtype = BMV_TYPE_INTERPOLATED;
  3960. interpmvp = get_bits1(gb);
  3961. }
  3962. }
  3963. v->bmvtype = bmvtype;
  3964. if (bmvtype != BMV_TYPE_DIRECT && idx_mbmode & 1) {
  3965. get_mvdata_interlaced(v, &dmv_x[bmvtype == BMV_TYPE_BACKWARD], &dmv_y[bmvtype == BMV_TYPE_BACKWARD], &pred_flag[bmvtype == BMV_TYPE_BACKWARD]);
  3966. }
  3967. if (bmvtype == BMV_TYPE_INTERPOLATED && interpmvp) {
  3968. get_mvdata_interlaced(v, &dmv_x[1], &dmv_y[1], &pred_flag[1]);
  3969. }
  3970. if (bmvtype == BMV_TYPE_DIRECT) {
  3971. dmv_x[0] = dmv_y[0] = pred_flag[0] = 0;
  3972. dmv_x[1] = dmv_y[1] = pred_flag[0] = 0;
  3973. }
  3974. vc1_pred_b_mv_intfi(v, 0, dmv_x, dmv_y, 1, pred_flag);
  3975. vc1_b_mc(v, dmv_x, dmv_y, (bmvtype == BMV_TYPE_DIRECT), bmvtype);
  3976. mb_has_coeffs = !(idx_mbmode & 2);
  3977. } else { // 4-MV
  3978. if (fwd)
  3979. bmvtype = BMV_TYPE_FORWARD;
  3980. v->bmvtype = bmvtype;
  3981. v->fourmvbp = get_vlc2(gb, v->fourmvbp_vlc->table, VC1_4MV_BLOCK_PATTERN_VLC_BITS, 1);
  3982. for (i = 0; i < 6; i++) {
  3983. if (i < 4) {
  3984. dmv_x[0] = dmv_y[0] = pred_flag[0] = 0;
  3985. dmv_x[1] = dmv_y[1] = pred_flag[1] = 0;
  3986. val = ((v->fourmvbp >> (3 - i)) & 1);
  3987. if (val) {
  3988. get_mvdata_interlaced(v, &dmv_x[bmvtype == BMV_TYPE_BACKWARD],
  3989. &dmv_y[bmvtype == BMV_TYPE_BACKWARD],
  3990. &pred_flag[bmvtype == BMV_TYPE_BACKWARD]);
  3991. }
  3992. vc1_pred_b_mv_intfi(v, i, dmv_x, dmv_y, 0, pred_flag);
  3993. vc1_mc_4mv_luma(v, i, bmvtype == BMV_TYPE_BACKWARD);
  3994. } else if (i == 4)
  3995. vc1_mc_4mv_chroma(v, bmvtype == BMV_TYPE_BACKWARD);
  3996. }
  3997. mb_has_coeffs = idx_mbmode & 1;
  3998. }
  3999. if (mb_has_coeffs)
  4000. cbp = 1 + get_vlc2(&v->s.gb, v->cbpcy_vlc->table, VC1_CBPCY_P_VLC_BITS, 2);
  4001. if (cbp) {
  4002. GET_MQUANT();
  4003. }
  4004. s->current_picture.f.qscale_table[mb_pos] = mquant;
  4005. if (!v->ttmbf && cbp) {
  4006. ttmb = get_vlc2(gb, ff_vc1_ttmb_vlc[v->tt_index].table, VC1_TTMB_VLC_BITS, 2);
  4007. }
  4008. dst_idx = 0;
  4009. for (i = 0; i < 6; i++) {
  4010. s->dc_val[0][s->block_index[i]] = 0;
  4011. dst_idx += i >> 2;
  4012. val = ((cbp >> (5 - i)) & 1);
  4013. off = (i & 4) ? 0 : (i & 1) * 8 + (i & 2) * 4 * s->linesize;
  4014. if (val) {
  4015. vc1_decode_p_block(v, s->block[i], i, mquant, ttmb,
  4016. first_block, s->dest[dst_idx] + off,
  4017. (i & 4) ? s->uvlinesize : s->linesize,
  4018. (i & 4) && (s->flags & CODEC_FLAG_GRAY), NULL);
  4019. if (!v->ttmbf && ttmb < 8)
  4020. ttmb = -1;
  4021. first_block = 0;
  4022. }
  4023. }
  4024. }
  4025. }
  4026. /** Decode blocks of I-frame
  4027. */
  4028. static void vc1_decode_i_blocks(VC1Context *v)
  4029. {
  4030. int k, j;
  4031. MpegEncContext *s = &v->s;
  4032. int cbp, val;
  4033. uint8_t *coded_val;
  4034. int mb_pos;
  4035. /* select codingmode used for VLC tables selection */
  4036. switch (v->y_ac_table_index) {
  4037. case 0:
  4038. v->codingset = (v->pqindex <= 8) ? CS_HIGH_RATE_INTRA : CS_LOW_MOT_INTRA;
  4039. break;
  4040. case 1:
  4041. v->codingset = CS_HIGH_MOT_INTRA;
  4042. break;
  4043. case 2:
  4044. v->codingset = CS_MID_RATE_INTRA;
  4045. break;
  4046. }
  4047. switch (v->c_ac_table_index) {
  4048. case 0:
  4049. v->codingset2 = (v->pqindex <= 8) ? CS_HIGH_RATE_INTER : CS_LOW_MOT_INTER;
  4050. break;
  4051. case 1:
  4052. v->codingset2 = CS_HIGH_MOT_INTER;
  4053. break;
  4054. case 2:
  4055. v->codingset2 = CS_MID_RATE_INTER;
  4056. break;
  4057. }
  4058. /* Set DC scale - y and c use the same */
  4059. s->y_dc_scale = s->y_dc_scale_table[v->pq];
  4060. s->c_dc_scale = s->c_dc_scale_table[v->pq];
  4061. //do frame decode
  4062. s->mb_x = s->mb_y = 0;
  4063. s->mb_intra = 1;
  4064. s->first_slice_line = 1;
  4065. for (s->mb_y = 0; s->mb_y < s->end_mb_y; s->mb_y++) {
  4066. s->mb_x = 0;
  4067. init_block_index(v);
  4068. for (; s->mb_x < v->end_mb_x; s->mb_x++) {
  4069. uint8_t *dst[6];
  4070. ff_update_block_index(s);
  4071. dst[0] = s->dest[0];
  4072. dst[1] = dst[0] + 8;
  4073. dst[2] = s->dest[0] + s->linesize * 8;
  4074. dst[3] = dst[2] + 8;
  4075. dst[4] = s->dest[1];
  4076. dst[5] = s->dest[2];
  4077. s->dsp.clear_blocks(s->block[0]);
  4078. mb_pos = s->mb_x + s->mb_y * s->mb_width;
  4079. s->current_picture.f.mb_type[mb_pos] = MB_TYPE_INTRA;
  4080. s->current_picture.f.qscale_table[mb_pos] = v->pq;
  4081. s->current_picture.f.motion_val[1][s->block_index[0]][0] = 0;
  4082. s->current_picture.f.motion_val[1][s->block_index[0]][1] = 0;
  4083. // do actual MB decoding and displaying
  4084. cbp = get_vlc2(&v->s.gb, ff_msmp4_mb_i_vlc.table, MB_INTRA_VLC_BITS, 2);
  4085. v->s.ac_pred = get_bits1(&v->s.gb);
  4086. for (k = 0; k < 6; k++) {
  4087. val = ((cbp >> (5 - k)) & 1);
  4088. if (k < 4) {
  4089. int pred = vc1_coded_block_pred(&v->s, k, &coded_val);
  4090. val = val ^ pred;
  4091. *coded_val = val;
  4092. }
  4093. cbp |= val << (5 - k);
  4094. vc1_decode_i_block(v, s->block[k], k, val, (k < 4) ? v->codingset : v->codingset2);
  4095. if (k > 3 && (s->flags & CODEC_FLAG_GRAY))
  4096. continue;
  4097. v->vc1dsp.vc1_inv_trans_8x8(s->block[k]);
  4098. if (v->pq >= 9 && v->overlap) {
  4099. if (v->rangeredfrm)
  4100. for (j = 0; j < 64; j++)
  4101. s->block[k][j] <<= 1;
  4102. s->dsp.put_signed_pixels_clamped(s->block[k], dst[k], k & 4 ? s->uvlinesize : s->linesize);
  4103. } else {
  4104. if (v->rangeredfrm)
  4105. for (j = 0; j < 64; j++)
  4106. s->block[k][j] = (s->block[k][j] - 64) << 1;
  4107. s->dsp.put_pixels_clamped(s->block[k], dst[k], k & 4 ? s->uvlinesize : s->linesize);
  4108. }
  4109. }
  4110. if (v->pq >= 9 && v->overlap) {
  4111. if (s->mb_x) {
  4112. v->vc1dsp.vc1_h_overlap(s->dest[0], s->linesize);
  4113. v->vc1dsp.vc1_h_overlap(s->dest[0] + 8 * s->linesize, s->linesize);
  4114. if (!(s->flags & CODEC_FLAG_GRAY)) {
  4115. v->vc1dsp.vc1_h_overlap(s->dest[1], s->uvlinesize);
  4116. v->vc1dsp.vc1_h_overlap(s->dest[2], s->uvlinesize);
  4117. }
  4118. }
  4119. v->vc1dsp.vc1_h_overlap(s->dest[0] + 8, s->linesize);
  4120. v->vc1dsp.vc1_h_overlap(s->dest[0] + 8 * s->linesize + 8, s->linesize);
  4121. if (!s->first_slice_line) {
  4122. v->vc1dsp.vc1_v_overlap(s->dest[0], s->linesize);
  4123. v->vc1dsp.vc1_v_overlap(s->dest[0] + 8, s->linesize);
  4124. if (!(s->flags & CODEC_FLAG_GRAY)) {
  4125. v->vc1dsp.vc1_v_overlap(s->dest[1], s->uvlinesize);
  4126. v->vc1dsp.vc1_v_overlap(s->dest[2], s->uvlinesize);
  4127. }
  4128. }
  4129. v->vc1dsp.vc1_v_overlap(s->dest[0] + 8 * s->linesize, s->linesize);
  4130. v->vc1dsp.vc1_v_overlap(s->dest[0] + 8 * s->linesize + 8, s->linesize);
  4131. }
  4132. if (v->s.loop_filter) vc1_loop_filter_iblk(v, v->pq);
  4133. if (get_bits_count(&s->gb) > v->bits) {
  4134. ff_er_add_slice(&s->er, 0, 0, s->mb_x, s->mb_y, ER_MB_ERROR);
  4135. av_log(s->avctx, AV_LOG_ERROR, "Bits overconsumption: %i > %i\n",
  4136. get_bits_count(&s->gb), v->bits);
  4137. return;
  4138. }
  4139. }
  4140. if (!v->s.loop_filter)
  4141. ff_mpeg_draw_horiz_band(s, s->mb_y * 16, 16);
  4142. else if (s->mb_y)
  4143. ff_mpeg_draw_horiz_band(s, (s->mb_y - 1) * 16, 16);
  4144. s->first_slice_line = 0;
  4145. }
  4146. if (v->s.loop_filter)
  4147. ff_mpeg_draw_horiz_band(s, (s->end_mb_y - 1) * 16, 16);
  4148. /* This is intentionally mb_height and not end_mb_y - unlike in advanced
  4149. * profile, these only differ are when decoding MSS2 rectangles. */
  4150. ff_er_add_slice(&s->er, 0, 0, s->mb_width - 1, s->mb_height - 1, ER_MB_END);
  4151. }
  4152. /** Decode blocks of I-frame for advanced profile
  4153. */
  4154. static void vc1_decode_i_blocks_adv(VC1Context *v)
  4155. {
  4156. int k;
  4157. MpegEncContext *s = &v->s;
  4158. int cbp, val;
  4159. uint8_t *coded_val;
  4160. int mb_pos;
  4161. int mquant = v->pq;
  4162. int mqdiff;
  4163. GetBitContext *gb = &s->gb;
  4164. /* select codingmode used for VLC tables selection */
  4165. switch (v->y_ac_table_index) {
  4166. case 0:
  4167. v->codingset = (v->pqindex <= 8) ? CS_HIGH_RATE_INTRA : CS_LOW_MOT_INTRA;
  4168. break;
  4169. case 1:
  4170. v->codingset = CS_HIGH_MOT_INTRA;
  4171. break;
  4172. case 2:
  4173. v->codingset = CS_MID_RATE_INTRA;
  4174. break;
  4175. }
  4176. switch (v->c_ac_table_index) {
  4177. case 0:
  4178. v->codingset2 = (v->pqindex <= 8) ? CS_HIGH_RATE_INTER : CS_LOW_MOT_INTER;
  4179. break;
  4180. case 1:
  4181. v->codingset2 = CS_HIGH_MOT_INTER;
  4182. break;
  4183. case 2:
  4184. v->codingset2 = CS_MID_RATE_INTER;
  4185. break;
  4186. }
  4187. // do frame decode
  4188. s->mb_x = s->mb_y = 0;
  4189. s->mb_intra = 1;
  4190. s->first_slice_line = 1;
  4191. s->mb_y = s->start_mb_y;
  4192. if (s->start_mb_y) {
  4193. s->mb_x = 0;
  4194. init_block_index(v);
  4195. memset(&s->coded_block[s->block_index[0] - s->b8_stride], 0,
  4196. (1 + s->b8_stride) * sizeof(*s->coded_block));
  4197. }
  4198. for (; s->mb_y < s->end_mb_y; s->mb_y++) {
  4199. s->mb_x = 0;
  4200. init_block_index(v);
  4201. for (;s->mb_x < s->mb_width; s->mb_x++) {
  4202. int16_t (*block)[64] = v->block[v->cur_blk_idx];
  4203. ff_update_block_index(s);
  4204. s->dsp.clear_blocks(block[0]);
  4205. mb_pos = s->mb_x + s->mb_y * s->mb_stride;
  4206. s->current_picture.f.mb_type[mb_pos + v->mb_off] = MB_TYPE_INTRA;
  4207. s->current_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][0] = 0;
  4208. s->current_picture.f.motion_val[1][s->block_index[0] + v->blocks_off][1] = 0;
  4209. // do actual MB decoding and displaying
  4210. if (v->fieldtx_is_raw)
  4211. v->fieldtx_plane[mb_pos] = get_bits1(&v->s.gb);
  4212. cbp = get_vlc2(&v->s.gb, ff_msmp4_mb_i_vlc.table, MB_INTRA_VLC_BITS, 2);
  4213. if ( v->acpred_is_raw)
  4214. v->s.ac_pred = get_bits1(&v->s.gb);
  4215. else
  4216. v->s.ac_pred = v->acpred_plane[mb_pos];
  4217. if (v->condover == CONDOVER_SELECT && v->overflg_is_raw)
  4218. v->over_flags_plane[mb_pos] = get_bits1(&v->s.gb);
  4219. GET_MQUANT();
  4220. s->current_picture.f.qscale_table[mb_pos] = mquant;
  4221. /* Set DC scale - y and c use the same */
  4222. s->y_dc_scale = s->y_dc_scale_table[mquant];
  4223. s->c_dc_scale = s->c_dc_scale_table[mquant];
  4224. for (k = 0; k < 6; k++) {
  4225. val = ((cbp >> (5 - k)) & 1);
  4226. if (k < 4) {
  4227. int pred = vc1_coded_block_pred(&v->s, k, &coded_val);
  4228. val = val ^ pred;
  4229. *coded_val = val;
  4230. }
  4231. cbp |= val << (5 - k);
  4232. v->a_avail = !s->first_slice_line || (k == 2 || k == 3);
  4233. v->c_avail = !!s->mb_x || (k == 1 || k == 3);
  4234. vc1_decode_i_block_adv(v, block[k], k, val,
  4235. (k < 4) ? v->codingset : v->codingset2, mquant);
  4236. if (k > 3 && (s->flags & CODEC_FLAG_GRAY))
  4237. continue;
  4238. v->vc1dsp.vc1_inv_trans_8x8(block[k]);
  4239. }
  4240. vc1_smooth_overlap_filter_iblk(v);
  4241. vc1_put_signed_blocks_clamped(v);
  4242. if (v->s.loop_filter) vc1_loop_filter_iblk_delayed(v, v->pq);
  4243. if (get_bits_count(&s->gb) > v->bits) {
  4244. // TODO: may need modification to handle slice coding
  4245. ff_er_add_slice(&s->er, 0, s->start_mb_y, s->mb_x, s->mb_y, ER_MB_ERROR);
  4246. av_log(s->avctx, AV_LOG_ERROR, "Bits overconsumption: %i > %i\n",
  4247. get_bits_count(&s->gb), v->bits);
  4248. return;
  4249. }
  4250. }
  4251. if (!v->s.loop_filter)
  4252. ff_mpeg_draw_horiz_band(s, s->mb_y * 16, 16);
  4253. else if (s->mb_y)
  4254. ff_mpeg_draw_horiz_band(s, (s->mb_y-1) * 16, 16);
  4255. s->first_slice_line = 0;
  4256. }
  4257. /* raw bottom MB row */
  4258. s->mb_x = 0;
  4259. init_block_index(v);
  4260. for (;s->mb_x < s->mb_width; s->mb_x++) {
  4261. ff_update_block_index(s);
  4262. vc1_put_signed_blocks_clamped(v);
  4263. if (v->s.loop_filter)
  4264. vc1_loop_filter_iblk_delayed(v, v->pq);
  4265. }
  4266. if (v->s.loop_filter)
  4267. ff_mpeg_draw_horiz_band(s, (s->end_mb_y-1)*16, 16);
  4268. ff_er_add_slice(&s->er, 0, s->start_mb_y << v->field_mode, s->mb_width - 1,
  4269. (s->end_mb_y << v->field_mode) - 1, ER_MB_END);
  4270. }
  4271. static void vc1_decode_p_blocks(VC1Context *v)
  4272. {
  4273. MpegEncContext *s = &v->s;
  4274. int apply_loop_filter;
  4275. /* select codingmode used for VLC tables selection */
  4276. switch (v->c_ac_table_index) {
  4277. case 0:
  4278. v->codingset = (v->pqindex <= 8) ? CS_HIGH_RATE_INTRA : CS_LOW_MOT_INTRA;
  4279. break;
  4280. case 1:
  4281. v->codingset = CS_HIGH_MOT_INTRA;
  4282. break;
  4283. case 2:
  4284. v->codingset = CS_MID_RATE_INTRA;
  4285. break;
  4286. }
  4287. switch (v->c_ac_table_index) {
  4288. case 0:
  4289. v->codingset2 = (v->pqindex <= 8) ? CS_HIGH_RATE_INTER : CS_LOW_MOT_INTER;
  4290. break;
  4291. case 1:
  4292. v->codingset2 = CS_HIGH_MOT_INTER;
  4293. break;
  4294. case 2:
  4295. v->codingset2 = CS_MID_RATE_INTER;
  4296. break;
  4297. }
  4298. apply_loop_filter = s->loop_filter && !(s->avctx->skip_loop_filter >= AVDISCARD_NONKEY);
  4299. s->first_slice_line = 1;
  4300. memset(v->cbp_base, 0, sizeof(v->cbp_base[0])*2*s->mb_stride);
  4301. for (s->mb_y = s->start_mb_y; s->mb_y < s->end_mb_y; s->mb_y++) {
  4302. s->mb_x = 0;
  4303. init_block_index(v);
  4304. for (; s->mb_x < s->mb_width; s->mb_x++) {
  4305. ff_update_block_index(s);
  4306. if (v->fcm == ILACE_FIELD)
  4307. vc1_decode_p_mb_intfi(v);
  4308. else if (v->fcm == ILACE_FRAME)
  4309. vc1_decode_p_mb_intfr(v);
  4310. else vc1_decode_p_mb(v);
  4311. if (s->mb_y != s->start_mb_y && apply_loop_filter && v->fcm == PROGRESSIVE)
  4312. vc1_apply_p_loop_filter(v);
  4313. if (get_bits_count(&s->gb) > v->bits || get_bits_count(&s->gb) < 0) {
  4314. // TODO: may need modification to handle slice coding
  4315. ff_er_add_slice(&s->er, 0, s->start_mb_y, s->mb_x, s->mb_y, ER_MB_ERROR);
  4316. av_log(s->avctx, AV_LOG_ERROR, "Bits overconsumption: %i > %i at %ix%i\n",
  4317. get_bits_count(&s->gb), v->bits, s->mb_x, s->mb_y);
  4318. return;
  4319. }
  4320. }
  4321. memmove(v->cbp_base, v->cbp, sizeof(v->cbp_base[0]) * s->mb_stride);
  4322. memmove(v->ttblk_base, v->ttblk, sizeof(v->ttblk_base[0]) * s->mb_stride);
  4323. memmove(v->is_intra_base, v->is_intra, sizeof(v->is_intra_base[0]) * s->mb_stride);
  4324. memmove(v->luma_mv_base, v->luma_mv, sizeof(v->luma_mv_base[0]) * s->mb_stride);
  4325. if (s->mb_y != s->start_mb_y) ff_mpeg_draw_horiz_band(s, (s->mb_y - 1) * 16, 16);
  4326. s->first_slice_line = 0;
  4327. }
  4328. if (apply_loop_filter && v->fcm == PROGRESSIVE) {
  4329. s->mb_x = 0;
  4330. init_block_index(v);
  4331. for (; s->mb_x < s->mb_width; s->mb_x++) {
  4332. ff_update_block_index(s);
  4333. vc1_apply_p_loop_filter(v);
  4334. }
  4335. }
  4336. if (s->end_mb_y >= s->start_mb_y)
  4337. ff_mpeg_draw_horiz_band(s, (s->end_mb_y - 1) * 16, 16);
  4338. ff_er_add_slice(&s->er, 0, s->start_mb_y << v->field_mode, s->mb_width - 1,
  4339. (s->end_mb_y << v->field_mode) - 1, ER_MB_END);
  4340. }
  4341. static void vc1_decode_b_blocks(VC1Context *v)
  4342. {
  4343. MpegEncContext *s = &v->s;
  4344. /* select codingmode used for VLC tables selection */
  4345. switch (v->c_ac_table_index) {
  4346. case 0:
  4347. v->codingset = (v->pqindex <= 8) ? CS_HIGH_RATE_INTRA : CS_LOW_MOT_INTRA;
  4348. break;
  4349. case 1:
  4350. v->codingset = CS_HIGH_MOT_INTRA;
  4351. break;
  4352. case 2:
  4353. v->codingset = CS_MID_RATE_INTRA;
  4354. break;
  4355. }
  4356. switch (v->c_ac_table_index) {
  4357. case 0:
  4358. v->codingset2 = (v->pqindex <= 8) ? CS_HIGH_RATE_INTER : CS_LOW_MOT_INTER;
  4359. break;
  4360. case 1:
  4361. v->codingset2 = CS_HIGH_MOT_INTER;
  4362. break;
  4363. case 2:
  4364. v->codingset2 = CS_MID_RATE_INTER;
  4365. break;
  4366. }
  4367. s->first_slice_line = 1;
  4368. for (s->mb_y = s->start_mb_y; s->mb_y < s->end_mb_y; s->mb_y++) {
  4369. s->mb_x = 0;
  4370. init_block_index(v);
  4371. for (; s->mb_x < s->mb_width; s->mb_x++) {
  4372. ff_update_block_index(s);
  4373. if (v->fcm == ILACE_FIELD)
  4374. vc1_decode_b_mb_intfi(v);
  4375. else
  4376. vc1_decode_b_mb(v);
  4377. if (get_bits_count(&s->gb) > v->bits || get_bits_count(&s->gb) < 0) {
  4378. // TODO: may need modification to handle slice coding
  4379. ff_er_add_slice(&s->er, 0, s->start_mb_y, s->mb_x, s->mb_y, ER_MB_ERROR);
  4380. av_log(s->avctx, AV_LOG_ERROR, "Bits overconsumption: %i > %i at %ix%i\n",
  4381. get_bits_count(&s->gb), v->bits, s->mb_x, s->mb_y);
  4382. return;
  4383. }
  4384. if (v->s.loop_filter) vc1_loop_filter_iblk(v, v->pq);
  4385. }
  4386. if (!v->s.loop_filter)
  4387. ff_mpeg_draw_horiz_band(s, s->mb_y * 16, 16);
  4388. else if (s->mb_y)
  4389. ff_mpeg_draw_horiz_band(s, (s->mb_y - 1) * 16, 16);
  4390. s->first_slice_line = 0;
  4391. }
  4392. if (v->s.loop_filter)
  4393. ff_mpeg_draw_horiz_band(s, (s->end_mb_y - 1) * 16, 16);
  4394. ff_er_add_slice(&s->er, 0, s->start_mb_y << v->field_mode, s->mb_width - 1,
  4395. (s->end_mb_y << v->field_mode) - 1, ER_MB_END);
  4396. }
  4397. static void vc1_decode_skip_blocks(VC1Context *v)
  4398. {
  4399. MpegEncContext *s = &v->s;
  4400. ff_er_add_slice(&s->er, 0, s->start_mb_y, s->mb_width - 1, s->end_mb_y - 1, ER_MB_END);
  4401. s->first_slice_line = 1;
  4402. for (s->mb_y = s->start_mb_y; s->mb_y < s->end_mb_y; s->mb_y++) {
  4403. s->mb_x = 0;
  4404. init_block_index(v);
  4405. ff_update_block_index(s);
  4406. if (s->last_picture.f.data[0]) {
  4407. memcpy(s->dest[0], s->last_picture.f.data[0] + s->mb_y * 16 * s->linesize, s->linesize * 16);
  4408. memcpy(s->dest[1], s->last_picture.f.data[1] + s->mb_y * 8 * s->uvlinesize, s->uvlinesize * 8);
  4409. memcpy(s->dest[2], s->last_picture.f.data[2] + s->mb_y * 8 * s->uvlinesize, s->uvlinesize * 8);
  4410. }
  4411. ff_mpeg_draw_horiz_band(s, s->mb_y * 16, 16);
  4412. s->first_slice_line = 0;
  4413. }
  4414. s->pict_type = AV_PICTURE_TYPE_P;
  4415. }
  4416. void ff_vc1_decode_blocks(VC1Context *v)
  4417. {
  4418. v->s.esc3_level_length = 0;
  4419. if (v->x8_type) {
  4420. ff_intrax8_decode_picture(&v->x8, 2*v->pq + v->halfpq, v->pq * !v->pquantizer);
  4421. } else {
  4422. v->cur_blk_idx = 0;
  4423. v->left_blk_idx = -1;
  4424. v->topleft_blk_idx = 1;
  4425. v->top_blk_idx = 2;
  4426. switch (v->s.pict_type) {
  4427. case AV_PICTURE_TYPE_I:
  4428. if (v->profile == PROFILE_ADVANCED)
  4429. vc1_decode_i_blocks_adv(v);
  4430. else
  4431. vc1_decode_i_blocks(v);
  4432. break;
  4433. case AV_PICTURE_TYPE_P:
  4434. if (v->p_frame_skipped)
  4435. vc1_decode_skip_blocks(v);
  4436. else
  4437. vc1_decode_p_blocks(v);
  4438. break;
  4439. case AV_PICTURE_TYPE_B:
  4440. if (v->bi_type) {
  4441. if (v->profile == PROFILE_ADVANCED)
  4442. vc1_decode_i_blocks_adv(v);
  4443. else
  4444. vc1_decode_i_blocks(v);
  4445. } else
  4446. vc1_decode_b_blocks(v);
  4447. break;
  4448. }
  4449. }
  4450. }
  4451. #if CONFIG_WMV3IMAGE_DECODER || CONFIG_VC1IMAGE_DECODER
  4452. typedef struct {
  4453. /**
  4454. * Transform coefficients for both sprites in 16.16 fixed point format,
  4455. * in the order they appear in the bitstream:
  4456. * x scale
  4457. * rotation 1 (unused)
  4458. * x offset
  4459. * rotation 2 (unused)
  4460. * y scale
  4461. * y offset
  4462. * alpha
  4463. */
  4464. int coefs[2][7];
  4465. int effect_type, effect_flag;
  4466. int effect_pcount1, effect_pcount2; ///< amount of effect parameters stored in effect_params
  4467. int effect_params1[15], effect_params2[10]; ///< effect parameters in 16.16 fixed point format
  4468. } SpriteData;
  4469. static inline int get_fp_val(GetBitContext* gb)
  4470. {
  4471. return (get_bits_long(gb, 30) - (1 << 29)) << 1;
  4472. }
  4473. static void vc1_sprite_parse_transform(GetBitContext* gb, int c[7])
  4474. {
  4475. c[1] = c[3] = 0;
  4476. switch (get_bits(gb, 2)) {
  4477. case 0:
  4478. c[0] = 1 << 16;
  4479. c[2] = get_fp_val(gb);
  4480. c[4] = 1 << 16;
  4481. break;
  4482. case 1:
  4483. c[0] = c[4] = get_fp_val(gb);
  4484. c[2] = get_fp_val(gb);
  4485. break;
  4486. case 2:
  4487. c[0] = get_fp_val(gb);
  4488. c[2] = get_fp_val(gb);
  4489. c[4] = get_fp_val(gb);
  4490. break;
  4491. case 3:
  4492. c[0] = get_fp_val(gb);
  4493. c[1] = get_fp_val(gb);
  4494. c[2] = get_fp_val(gb);
  4495. c[3] = get_fp_val(gb);
  4496. c[4] = get_fp_val(gb);
  4497. break;
  4498. }
  4499. c[5] = get_fp_val(gb);
  4500. if (get_bits1(gb))
  4501. c[6] = get_fp_val(gb);
  4502. else
  4503. c[6] = 1 << 16;
  4504. }
  4505. static void vc1_parse_sprites(VC1Context *v, GetBitContext* gb, SpriteData* sd)
  4506. {
  4507. AVCodecContext *avctx = v->s.avctx;
  4508. int sprite, i;
  4509. for (sprite = 0; sprite <= v->two_sprites; sprite++) {
  4510. vc1_sprite_parse_transform(gb, sd->coefs[sprite]);
  4511. if (sd->coefs[sprite][1] || sd->coefs[sprite][3])
  4512. av_log_ask_for_sample(avctx, "Rotation coefficients are not zero");
  4513. av_log(avctx, AV_LOG_DEBUG, sprite ? "S2:" : "S1:");
  4514. for (i = 0; i < 7; i++)
  4515. av_log(avctx, AV_LOG_DEBUG, " %d.%.3d",
  4516. sd->coefs[sprite][i] / (1<<16),
  4517. (abs(sd->coefs[sprite][i]) & 0xFFFF) * 1000 / (1 << 16));
  4518. av_log(avctx, AV_LOG_DEBUG, "\n");
  4519. }
  4520. skip_bits(gb, 2);
  4521. if (sd->effect_type = get_bits_long(gb, 30)) {
  4522. switch (sd->effect_pcount1 = get_bits(gb, 4)) {
  4523. case 7:
  4524. vc1_sprite_parse_transform(gb, sd->effect_params1);
  4525. break;
  4526. case 14:
  4527. vc1_sprite_parse_transform(gb, sd->effect_params1);
  4528. vc1_sprite_parse_transform(gb, sd->effect_params1 + 7);
  4529. break;
  4530. default:
  4531. for (i = 0; i < sd->effect_pcount1; i++)
  4532. sd->effect_params1[i] = get_fp_val(gb);
  4533. }
  4534. if (sd->effect_type != 13 || sd->effect_params1[0] != sd->coefs[0][6]) {
  4535. // effect 13 is simple alpha blending and matches the opacity above
  4536. av_log(avctx, AV_LOG_DEBUG, "Effect: %d; params: ", sd->effect_type);
  4537. for (i = 0; i < sd->effect_pcount1; i++)
  4538. av_log(avctx, AV_LOG_DEBUG, " %d.%.2d",
  4539. sd->effect_params1[i] / (1 << 16),
  4540. (abs(sd->effect_params1[i]) & 0xFFFF) * 1000 / (1 << 16));
  4541. av_log(avctx, AV_LOG_DEBUG, "\n");
  4542. }
  4543. sd->effect_pcount2 = get_bits(gb, 16);
  4544. if (sd->effect_pcount2 > 10) {
  4545. av_log(avctx, AV_LOG_ERROR, "Too many effect parameters\n");
  4546. return;
  4547. } else if (sd->effect_pcount2) {
  4548. i = -1;
  4549. av_log(avctx, AV_LOG_DEBUG, "Effect params 2: ");
  4550. while (++i < sd->effect_pcount2) {
  4551. sd->effect_params2[i] = get_fp_val(gb);
  4552. av_log(avctx, AV_LOG_DEBUG, " %d.%.2d",
  4553. sd->effect_params2[i] / (1 << 16),
  4554. (abs(sd->effect_params2[i]) & 0xFFFF) * 1000 / (1 << 16));
  4555. }
  4556. av_log(avctx, AV_LOG_DEBUG, "\n");
  4557. }
  4558. }
  4559. if (sd->effect_flag = get_bits1(gb))
  4560. av_log(avctx, AV_LOG_DEBUG, "Effect flag set\n");
  4561. if (get_bits_count(gb) >= gb->size_in_bits +
  4562. (avctx->codec_id == AV_CODEC_ID_WMV3IMAGE ? 64 : 0))
  4563. av_log(avctx, AV_LOG_ERROR, "Buffer overrun\n");
  4564. if (get_bits_count(gb) < gb->size_in_bits - 8)
  4565. av_log(avctx, AV_LOG_WARNING, "Buffer not fully read\n");
  4566. }
  4567. static void vc1_draw_sprites(VC1Context *v, SpriteData* sd)
  4568. {
  4569. int i, plane, row, sprite;
  4570. int sr_cache[2][2] = { { -1, -1 }, { -1, -1 } };
  4571. uint8_t* src_h[2][2];
  4572. int xoff[2], xadv[2], yoff[2], yadv[2], alpha;
  4573. int ysub[2];
  4574. MpegEncContext *s = &v->s;
  4575. for (i = 0; i < 2; i++) {
  4576. xoff[i] = av_clip(sd->coefs[i][2], 0, v->sprite_width-1 << 16);
  4577. xadv[i] = sd->coefs[i][0];
  4578. if (xadv[i] != 1<<16 || (v->sprite_width << 16) - (v->output_width << 16) - xoff[i])
  4579. xadv[i] = av_clip(xadv[i], 0, ((v->sprite_width<<16) - xoff[i] - 1) / v->output_width);
  4580. yoff[i] = av_clip(sd->coefs[i][5], 0, v->sprite_height-1 << 16);
  4581. yadv[i] = av_clip(sd->coefs[i][4], 0, ((v->sprite_height << 16) - yoff[i]) / v->output_height);
  4582. }
  4583. alpha = av_clip(sd->coefs[1][6], 0, (1<<16) - 1);
  4584. for (plane = 0; plane < (s->flags&CODEC_FLAG_GRAY ? 1 : 3); plane++) {
  4585. int width = v->output_width>>!!plane;
  4586. for (row = 0; row < v->output_height>>!!plane; row++) {
  4587. uint8_t *dst = v->sprite_output_frame.data[plane] +
  4588. v->sprite_output_frame.linesize[plane] * row;
  4589. for (sprite = 0; sprite <= v->two_sprites; sprite++) {
  4590. uint8_t *iplane = s->current_picture.f.data[plane];
  4591. int iline = s->current_picture.f.linesize[plane];
  4592. int ycoord = yoff[sprite] + yadv[sprite] * row;
  4593. int yline = ycoord >> 16;
  4594. int next_line;
  4595. ysub[sprite] = ycoord & 0xFFFF;
  4596. if (sprite) {
  4597. iplane = s->last_picture.f.data[plane];
  4598. iline = s->last_picture.f.linesize[plane];
  4599. }
  4600. next_line = FFMIN(yline + 1, (v->sprite_height >> !!plane) - 1) * iline;
  4601. if (!(xoff[sprite] & 0xFFFF) && xadv[sprite] == 1 << 16) {
  4602. src_h[sprite][0] = iplane + (xoff[sprite] >> 16) + yline * iline;
  4603. if (ysub[sprite])
  4604. src_h[sprite][1] = iplane + (xoff[sprite] >> 16) + next_line;
  4605. } else {
  4606. if (sr_cache[sprite][0] != yline) {
  4607. if (sr_cache[sprite][1] == yline) {
  4608. FFSWAP(uint8_t*, v->sr_rows[sprite][0], v->sr_rows[sprite][1]);
  4609. FFSWAP(int, sr_cache[sprite][0], sr_cache[sprite][1]);
  4610. } else {
  4611. v->vc1dsp.sprite_h(v->sr_rows[sprite][0], iplane + yline * iline, xoff[sprite], xadv[sprite], width);
  4612. sr_cache[sprite][0] = yline;
  4613. }
  4614. }
  4615. if (ysub[sprite] && sr_cache[sprite][1] != yline + 1) {
  4616. v->vc1dsp.sprite_h(v->sr_rows[sprite][1],
  4617. iplane + next_line, xoff[sprite],
  4618. xadv[sprite], width);
  4619. sr_cache[sprite][1] = yline + 1;
  4620. }
  4621. src_h[sprite][0] = v->sr_rows[sprite][0];
  4622. src_h[sprite][1] = v->sr_rows[sprite][1];
  4623. }
  4624. }
  4625. if (!v->two_sprites) {
  4626. if (ysub[0]) {
  4627. v->vc1dsp.sprite_v_single(dst, src_h[0][0], src_h[0][1], ysub[0], width);
  4628. } else {
  4629. memcpy(dst, src_h[0][0], width);
  4630. }
  4631. } else {
  4632. if (ysub[0] && ysub[1]) {
  4633. v->vc1dsp.sprite_v_double_twoscale(dst, src_h[0][0], src_h[0][1], ysub[0],
  4634. src_h[1][0], src_h[1][1], ysub[1], alpha, width);
  4635. } else if (ysub[0]) {
  4636. v->vc1dsp.sprite_v_double_onescale(dst, src_h[0][0], src_h[0][1], ysub[0],
  4637. src_h[1][0], alpha, width);
  4638. } else if (ysub[1]) {
  4639. v->vc1dsp.sprite_v_double_onescale(dst, src_h[1][0], src_h[1][1], ysub[1],
  4640. src_h[0][0], (1<<16)-1-alpha, width);
  4641. } else {
  4642. v->vc1dsp.sprite_v_double_noscale(dst, src_h[0][0], src_h[1][0], alpha, width);
  4643. }
  4644. }
  4645. }
  4646. if (!plane) {
  4647. for (i = 0; i < 2; i++) {
  4648. xoff[i] >>= 1;
  4649. yoff[i] >>= 1;
  4650. }
  4651. }
  4652. }
  4653. }
  4654. static int vc1_decode_sprites(VC1Context *v, GetBitContext* gb)
  4655. {
  4656. MpegEncContext *s = &v->s;
  4657. AVCodecContext *avctx = s->avctx;
  4658. SpriteData sd;
  4659. vc1_parse_sprites(v, gb, &sd);
  4660. if (!s->current_picture.f.data[0]) {
  4661. av_log(avctx, AV_LOG_ERROR, "Got no sprites\n");
  4662. return -1;
  4663. }
  4664. if (v->two_sprites && (!s->last_picture_ptr || !s->last_picture.f.data[0])) {
  4665. av_log(avctx, AV_LOG_WARNING, "Need two sprites, only got one\n");
  4666. v->two_sprites = 0;
  4667. }
  4668. if (v->sprite_output_frame.data[0])
  4669. avctx->release_buffer(avctx, &v->sprite_output_frame);
  4670. v->sprite_output_frame.buffer_hints = FF_BUFFER_HINTS_VALID;
  4671. v->sprite_output_frame.reference = 0;
  4672. if (ff_get_buffer(avctx, &v->sprite_output_frame) < 0) {
  4673. av_log(avctx, AV_LOG_ERROR, "get_buffer() failed\n");
  4674. return -1;
  4675. }
  4676. vc1_draw_sprites(v, &sd);
  4677. return 0;
  4678. }
  4679. static void vc1_sprite_flush(AVCodecContext *avctx)
  4680. {
  4681. VC1Context *v = avctx->priv_data;
  4682. MpegEncContext *s = &v->s;
  4683. AVFrame *f = &s->current_picture.f;
  4684. int plane, i;
  4685. /* Windows Media Image codecs have a convergence interval of two keyframes.
  4686. Since we can't enforce it, clear to black the missing sprite. This is
  4687. wrong but it looks better than doing nothing. */
  4688. if (f->data[0])
  4689. for (plane = 0; plane < (s->flags&CODEC_FLAG_GRAY ? 1 : 3); plane++)
  4690. for (i = 0; i < v->sprite_height>>!!plane; i++)
  4691. memset(f->data[plane] + i * f->linesize[plane],
  4692. plane ? 128 : 0, f->linesize[plane]);
  4693. }
  4694. #endif
  4695. av_cold int ff_vc1_decode_init_alloc_tables(VC1Context *v)
  4696. {
  4697. MpegEncContext *s = &v->s;
  4698. int i;
  4699. /* Allocate mb bitplanes */
  4700. v->mv_type_mb_plane = av_malloc (s->mb_stride * s->mb_height);
  4701. v->direct_mb_plane = av_malloc (s->mb_stride * s->mb_height);
  4702. v->forward_mb_plane = av_malloc (s->mb_stride * s->mb_height);
  4703. v->fieldtx_plane = av_mallocz(s->mb_stride * s->mb_height);
  4704. v->acpred_plane = av_malloc (s->mb_stride * s->mb_height);
  4705. v->over_flags_plane = av_malloc (s->mb_stride * s->mb_height);
  4706. v->n_allocated_blks = s->mb_width + 2;
  4707. v->block = av_malloc(sizeof(*v->block) * v->n_allocated_blks);
  4708. v->cbp_base = av_malloc(sizeof(v->cbp_base[0]) * 2 * s->mb_stride);
  4709. v->cbp = v->cbp_base + s->mb_stride;
  4710. v->ttblk_base = av_malloc(sizeof(v->ttblk_base[0]) * 2 * s->mb_stride);
  4711. v->ttblk = v->ttblk_base + s->mb_stride;
  4712. v->is_intra_base = av_mallocz(sizeof(v->is_intra_base[0]) * 2 * s->mb_stride);
  4713. v->is_intra = v->is_intra_base + s->mb_stride;
  4714. v->luma_mv_base = av_malloc(sizeof(v->luma_mv_base[0]) * 2 * s->mb_stride);
  4715. v->luma_mv = v->luma_mv_base + s->mb_stride;
  4716. /* allocate block type info in that way so it could be used with s->block_index[] */
  4717. v->mb_type_base = av_malloc(s->b8_stride * (s->mb_height * 2 + 1) + s->mb_stride * (s->mb_height + 1) * 2);
  4718. v->mb_type[0] = v->mb_type_base + s->b8_stride + 1;
  4719. v->mb_type[1] = v->mb_type_base + s->b8_stride * (s->mb_height * 2 + 1) + s->mb_stride + 1;
  4720. v->mb_type[2] = v->mb_type[1] + s->mb_stride * (s->mb_height + 1);
  4721. /* allocate memory to store block level MV info */
  4722. v->blk_mv_type_base = av_mallocz( s->b8_stride * (s->mb_height * 2 + 1) + s->mb_stride * (s->mb_height + 1) * 2);
  4723. v->blk_mv_type = v->blk_mv_type_base + s->b8_stride + 1;
  4724. v->mv_f_base = av_mallocz(2 * (s->b8_stride * (s->mb_height * 2 + 1) + s->mb_stride * (s->mb_height + 1) * 2));
  4725. v->mv_f[0] = v->mv_f_base + s->b8_stride + 1;
  4726. v->mv_f[1] = v->mv_f[0] + (s->b8_stride * (s->mb_height * 2 + 1) + s->mb_stride * (s->mb_height + 1) * 2);
  4727. v->mv_f_last_base = av_mallocz(2 * (s->b8_stride * (s->mb_height * 2 + 1) + s->mb_stride * (s->mb_height + 1) * 2));
  4728. v->mv_f_last[0] = v->mv_f_last_base + s->b8_stride + 1;
  4729. v->mv_f_last[1] = v->mv_f_last[0] + (s->b8_stride * (s->mb_height * 2 + 1) + s->mb_stride * (s->mb_height + 1) * 2);
  4730. v->mv_f_next_base = av_mallocz(2 * (s->b8_stride * (s->mb_height * 2 + 1) + s->mb_stride * (s->mb_height + 1) * 2));
  4731. v->mv_f_next[0] = v->mv_f_next_base + s->b8_stride + 1;
  4732. v->mv_f_next[1] = v->mv_f_next[0] + (s->b8_stride * (s->mb_height * 2 + 1) + s->mb_stride * (s->mb_height + 1) * 2);
  4733. /* Init coded blocks info */
  4734. if (v->profile == PROFILE_ADVANCED) {
  4735. // if (alloc_bitplane(&v->over_flags_plane, s->mb_width, s->mb_height) < 0)
  4736. // return -1;
  4737. // if (alloc_bitplane(&v->ac_pred_plane, s->mb_width, s->mb_height) < 0)
  4738. // return -1;
  4739. }
  4740. ff_intrax8_common_init(&v->x8,s);
  4741. if (s->avctx->codec_id == AV_CODEC_ID_WMV3IMAGE || s->avctx->codec_id == AV_CODEC_ID_VC1IMAGE) {
  4742. for (i = 0; i < 4; i++)
  4743. if (!(v->sr_rows[i >> 1][i & 1] = av_malloc(v->output_width))) return -1;
  4744. }
  4745. if (!v->mv_type_mb_plane || !v->direct_mb_plane || !v->acpred_plane || !v->over_flags_plane ||
  4746. !v->block || !v->cbp_base || !v->ttblk_base || !v->is_intra_base || !v->luma_mv_base ||
  4747. !v->mb_type_base)
  4748. return -1;
  4749. return 0;
  4750. }
  4751. av_cold void ff_vc1_init_transposed_scantables(VC1Context *v)
  4752. {
  4753. int i;
  4754. for (i = 0; i < 64; i++) {
  4755. #define transpose(x) ((x >> 3) | ((x & 7) << 3))
  4756. v->zz_8x8[0][i] = transpose(ff_wmv1_scantable[0][i]);
  4757. v->zz_8x8[1][i] = transpose(ff_wmv1_scantable[1][i]);
  4758. v->zz_8x8[2][i] = transpose(ff_wmv1_scantable[2][i]);
  4759. v->zz_8x8[3][i] = transpose(ff_wmv1_scantable[3][i]);
  4760. v->zzi_8x8[i] = transpose(ff_vc1_adv_interlaced_8x8_zz[i]);
  4761. }
  4762. v->left_blk_sh = 0;
  4763. v->top_blk_sh = 3;
  4764. }
  4765. /** Initialize a VC1/WMV3 decoder
  4766. * @todo TODO: Handle VC-1 IDUs (Transport level?)
  4767. * @todo TODO: Decypher remaining bits in extra_data
  4768. */
  4769. static av_cold int vc1_decode_init(AVCodecContext *avctx)
  4770. {
  4771. VC1Context *v = avctx->priv_data;
  4772. MpegEncContext *s = &v->s;
  4773. GetBitContext gb;
  4774. /* save the container output size for WMImage */
  4775. v->output_width = avctx->width;
  4776. v->output_height = avctx->height;
  4777. if (!avctx->extradata_size || !avctx->extradata)
  4778. return -1;
  4779. if (!(avctx->flags & CODEC_FLAG_GRAY))
  4780. avctx->pix_fmt = avctx->get_format(avctx, avctx->codec->pix_fmts);
  4781. else
  4782. avctx->pix_fmt = AV_PIX_FMT_GRAY8;
  4783. avctx->hwaccel = ff_find_hwaccel(avctx->codec->id, avctx->pix_fmt);
  4784. v->s.avctx = avctx;
  4785. avctx->flags |= CODEC_FLAG_EMU_EDGE;
  4786. v->s.flags |= CODEC_FLAG_EMU_EDGE;
  4787. if (ff_vc1_init_common(v) < 0)
  4788. return -1;
  4789. // ensure static VLC tables are initialized
  4790. if (ff_msmpeg4_decode_init(avctx) < 0)
  4791. return -1;
  4792. if (ff_vc1_decode_init_alloc_tables(v) < 0)
  4793. return -1;
  4794. // Hack to ensure the above functions will be called
  4795. // again once we know all necessary settings.
  4796. // That this is necessary might indicate a bug.
  4797. ff_vc1_decode_end(avctx);
  4798. ff_h264chroma_init(&v->h264chroma, 8);
  4799. ff_vc1dsp_init(&v->vc1dsp);
  4800. if (avctx->codec_id == AV_CODEC_ID_WMV3 || avctx->codec_id == AV_CODEC_ID_WMV3IMAGE) {
  4801. int count = 0;
  4802. // looks like WMV3 has a sequence header stored in the extradata
  4803. // advanced sequence header may be before the first frame
  4804. // the last byte of the extradata is a version number, 1 for the
  4805. // samples we can decode
  4806. init_get_bits(&gb, avctx->extradata, avctx->extradata_size*8);
  4807. if (ff_vc1_decode_sequence_header(avctx, v, &gb) < 0)
  4808. return -1;
  4809. count = avctx->extradata_size*8 - get_bits_count(&gb);
  4810. if (count > 0) {
  4811. av_log(avctx, AV_LOG_INFO, "Extra data: %i bits left, value: %X\n",
  4812. count, get_bits(&gb, count));
  4813. } else if (count < 0) {
  4814. av_log(avctx, AV_LOG_INFO, "Read %i bits in overflow\n", -count);
  4815. }
  4816. } else { // VC1/WVC1/WVP2
  4817. const uint8_t *start = avctx->extradata;
  4818. uint8_t *end = avctx->extradata + avctx->extradata_size;
  4819. const uint8_t *next;
  4820. int size, buf2_size;
  4821. uint8_t *buf2 = NULL;
  4822. int seq_initialized = 0, ep_initialized = 0;
  4823. if (avctx->extradata_size < 16) {
  4824. av_log(avctx, AV_LOG_ERROR, "Extradata size too small: %i\n", avctx->extradata_size);
  4825. return -1;
  4826. }
  4827. buf2 = av_mallocz(avctx->extradata_size + FF_INPUT_BUFFER_PADDING_SIZE);
  4828. start = find_next_marker(start, end); // in WVC1 extradata first byte is its size, but can be 0 in mkv
  4829. next = start;
  4830. for (; next < end; start = next) {
  4831. next = find_next_marker(start + 4, end);
  4832. size = next - start - 4;
  4833. if (size <= 0)
  4834. continue;
  4835. buf2_size = vc1_unescape_buffer(start + 4, size, buf2);
  4836. init_get_bits(&gb, buf2, buf2_size * 8);
  4837. switch (AV_RB32(start)) {
  4838. case VC1_CODE_SEQHDR:
  4839. if (ff_vc1_decode_sequence_header(avctx, v, &gb) < 0) {
  4840. av_free(buf2);
  4841. return -1;
  4842. }
  4843. seq_initialized = 1;
  4844. break;
  4845. case VC1_CODE_ENTRYPOINT:
  4846. if (ff_vc1_decode_entry_point(avctx, v, &gb) < 0) {
  4847. av_free(buf2);
  4848. return -1;
  4849. }
  4850. ep_initialized = 1;
  4851. break;
  4852. }
  4853. }
  4854. av_free(buf2);
  4855. if (!seq_initialized || !ep_initialized) {
  4856. av_log(avctx, AV_LOG_ERROR, "Incomplete extradata\n");
  4857. return -1;
  4858. }
  4859. v->res_sprite = (avctx->codec_id == AV_CODEC_ID_VC1IMAGE);
  4860. }
  4861. avctx->profile = v->profile;
  4862. if (v->profile == PROFILE_ADVANCED)
  4863. avctx->level = v->level;
  4864. avctx->has_b_frames = !!avctx->max_b_frames;
  4865. s->mb_width = (avctx->coded_width + 15) >> 4;
  4866. s->mb_height = (avctx->coded_height + 15) >> 4;
  4867. if (v->profile == PROFILE_ADVANCED || v->res_fasttx) {
  4868. ff_vc1_init_transposed_scantables(v);
  4869. } else {
  4870. memcpy(v->zz_8x8, ff_wmv1_scantable, 4*64);
  4871. v->left_blk_sh = 3;
  4872. v->top_blk_sh = 0;
  4873. }
  4874. if (avctx->codec_id == AV_CODEC_ID_WMV3IMAGE || avctx->codec_id == AV_CODEC_ID_VC1IMAGE) {
  4875. v->sprite_width = avctx->coded_width;
  4876. v->sprite_height = avctx->coded_height;
  4877. avctx->coded_width = avctx->width = v->output_width;
  4878. avctx->coded_height = avctx->height = v->output_height;
  4879. // prevent 16.16 overflows
  4880. if (v->sprite_width > 1 << 14 ||
  4881. v->sprite_height > 1 << 14 ||
  4882. v->output_width > 1 << 14 ||
  4883. v->output_height > 1 << 14) return -1;
  4884. if ((v->sprite_width&1) || (v->sprite_height&1)) {
  4885. av_log_ask_for_sample(avctx, "odd sprites are not supported\n");
  4886. return AVERROR_PATCHWELCOME;
  4887. }
  4888. }
  4889. return 0;
  4890. }
  4891. /** Close a VC1/WMV3 decoder
  4892. * @warning Initial try at using MpegEncContext stuff
  4893. */
  4894. av_cold int ff_vc1_decode_end(AVCodecContext *avctx)
  4895. {
  4896. VC1Context *v = avctx->priv_data;
  4897. int i;
  4898. if ((avctx->codec_id == AV_CODEC_ID_WMV3IMAGE || avctx->codec_id == AV_CODEC_ID_VC1IMAGE)
  4899. && v->sprite_output_frame.data[0])
  4900. avctx->release_buffer(avctx, &v->sprite_output_frame);
  4901. for (i = 0; i < 4; i++)
  4902. av_freep(&v->sr_rows[i >> 1][i & 1]);
  4903. av_freep(&v->hrd_rate);
  4904. av_freep(&v->hrd_buffer);
  4905. ff_MPV_common_end(&v->s);
  4906. av_freep(&v->mv_type_mb_plane);
  4907. av_freep(&v->direct_mb_plane);
  4908. av_freep(&v->forward_mb_plane);
  4909. av_freep(&v->fieldtx_plane);
  4910. av_freep(&v->acpred_plane);
  4911. av_freep(&v->over_flags_plane);
  4912. av_freep(&v->mb_type_base);
  4913. av_freep(&v->blk_mv_type_base);
  4914. av_freep(&v->mv_f_base);
  4915. av_freep(&v->mv_f_last_base);
  4916. av_freep(&v->mv_f_next_base);
  4917. av_freep(&v->block);
  4918. av_freep(&v->cbp_base);
  4919. av_freep(&v->ttblk_base);
  4920. av_freep(&v->is_intra_base); // FIXME use v->mb_type[]
  4921. av_freep(&v->luma_mv_base);
  4922. ff_intrax8_common_end(&v->x8);
  4923. return 0;
  4924. }
  4925. /** Decode a VC1/WMV3 frame
  4926. * @todo TODO: Handle VC-1 IDUs (Transport level?)
  4927. */
  4928. static int vc1_decode_frame(AVCodecContext *avctx, void *data,
  4929. int *got_frame, AVPacket *avpkt)
  4930. {
  4931. const uint8_t *buf = avpkt->data;
  4932. int buf_size = avpkt->size, n_slices = 0, i;
  4933. VC1Context *v = avctx->priv_data;
  4934. MpegEncContext *s = &v->s;
  4935. AVFrame *pict = data;
  4936. uint8_t *buf2 = NULL;
  4937. const uint8_t *buf_start = buf, *buf_start_second_field = NULL;
  4938. int mb_height, n_slices1=-1;
  4939. struct {
  4940. uint8_t *buf;
  4941. GetBitContext gb;
  4942. int mby_start;
  4943. } *slices = NULL, *tmp;
  4944. v->second_field = 0;
  4945. if(s->flags & CODEC_FLAG_LOW_DELAY)
  4946. s->low_delay = 1;
  4947. /* no supplementary picture */
  4948. if (buf_size == 0 || (buf_size == 4 && AV_RB32(buf) == VC1_CODE_ENDOFSEQ)) {
  4949. /* special case for last picture */
  4950. if (s->low_delay == 0 && s->next_picture_ptr) {
  4951. *pict = s->next_picture_ptr->f;
  4952. s->next_picture_ptr = NULL;
  4953. *got_frame = 1;
  4954. }
  4955. return buf_size;
  4956. }
  4957. if (s->avctx->codec->capabilities&CODEC_CAP_HWACCEL_VDPAU) {
  4958. if (v->profile < PROFILE_ADVANCED)
  4959. avctx->pix_fmt = AV_PIX_FMT_VDPAU_WMV3;
  4960. else
  4961. avctx->pix_fmt = AV_PIX_FMT_VDPAU_VC1;
  4962. }
  4963. //for advanced profile we may need to parse and unescape data
  4964. if (avctx->codec_id == AV_CODEC_ID_VC1 || avctx->codec_id == AV_CODEC_ID_VC1IMAGE) {
  4965. int buf_size2 = 0;
  4966. buf2 = av_mallocz(buf_size + FF_INPUT_BUFFER_PADDING_SIZE);
  4967. if (IS_MARKER(AV_RB32(buf))) { /* frame starts with marker and needs to be parsed */
  4968. const uint8_t *start, *end, *next;
  4969. int size;
  4970. next = buf;
  4971. for (start = buf, end = buf + buf_size; next < end; start = next) {
  4972. next = find_next_marker(start + 4, end);
  4973. size = next - start - 4;
  4974. if (size <= 0) continue;
  4975. switch (AV_RB32(start)) {
  4976. case VC1_CODE_FRAME:
  4977. if (avctx->hwaccel ||
  4978. s->avctx->codec->capabilities&CODEC_CAP_HWACCEL_VDPAU)
  4979. buf_start = start;
  4980. buf_size2 = vc1_unescape_buffer(start + 4, size, buf2);
  4981. break;
  4982. case VC1_CODE_FIELD: {
  4983. int buf_size3;
  4984. if (avctx->hwaccel ||
  4985. s->avctx->codec->capabilities&CODEC_CAP_HWACCEL_VDPAU)
  4986. buf_start_second_field = start;
  4987. tmp = av_realloc(slices, sizeof(*slices) * (n_slices+1));
  4988. if (!tmp)
  4989. goto err;
  4990. slices = tmp;
  4991. slices[n_slices].buf = av_mallocz(buf_size + FF_INPUT_BUFFER_PADDING_SIZE);
  4992. if (!slices[n_slices].buf)
  4993. goto err;
  4994. buf_size3 = vc1_unescape_buffer(start + 4, size,
  4995. slices[n_slices].buf);
  4996. init_get_bits(&slices[n_slices].gb, slices[n_slices].buf,
  4997. buf_size3 << 3);
  4998. /* assuming that the field marker is at the exact middle,
  4999. hope it's correct */
  5000. slices[n_slices].mby_start = s->mb_height >> 1;
  5001. n_slices1 = n_slices - 1; // index of the last slice of the first field
  5002. n_slices++;
  5003. break;
  5004. }
  5005. case VC1_CODE_ENTRYPOINT: /* it should be before frame data */
  5006. buf_size2 = vc1_unescape_buffer(start + 4, size, buf2);
  5007. init_get_bits(&s->gb, buf2, buf_size2 * 8);
  5008. ff_vc1_decode_entry_point(avctx, v, &s->gb);
  5009. break;
  5010. case VC1_CODE_SLICE: {
  5011. int buf_size3;
  5012. tmp = av_realloc(slices, sizeof(*slices) * (n_slices+1));
  5013. if (!tmp)
  5014. goto err;
  5015. slices = tmp;
  5016. slices[n_slices].buf = av_mallocz(buf_size + FF_INPUT_BUFFER_PADDING_SIZE);
  5017. if (!slices[n_slices].buf)
  5018. goto err;
  5019. buf_size3 = vc1_unescape_buffer(start + 4, size,
  5020. slices[n_slices].buf);
  5021. init_get_bits(&slices[n_slices].gb, slices[n_slices].buf,
  5022. buf_size3 << 3);
  5023. slices[n_slices].mby_start = get_bits(&slices[n_slices].gb, 9);
  5024. n_slices++;
  5025. break;
  5026. }
  5027. }
  5028. }
  5029. } else if (v->interlace && ((buf[0] & 0xC0) == 0xC0)) { /* WVC1 interlaced stores both fields divided by marker */
  5030. const uint8_t *divider;
  5031. int buf_size3;
  5032. divider = find_next_marker(buf, buf + buf_size);
  5033. if ((divider == (buf + buf_size)) || AV_RB32(divider) != VC1_CODE_FIELD) {
  5034. av_log(avctx, AV_LOG_ERROR, "Error in WVC1 interlaced frame\n");
  5035. goto err;
  5036. } else { // found field marker, unescape second field
  5037. if (avctx->hwaccel ||
  5038. s->avctx->codec->capabilities&CODEC_CAP_HWACCEL_VDPAU)
  5039. buf_start_second_field = divider;
  5040. tmp = av_realloc(slices, sizeof(*slices) * (n_slices+1));
  5041. if (!tmp)
  5042. goto err;
  5043. slices = tmp;
  5044. slices[n_slices].buf = av_mallocz(buf_size + FF_INPUT_BUFFER_PADDING_SIZE);
  5045. if (!slices[n_slices].buf)
  5046. goto err;
  5047. buf_size3 = vc1_unescape_buffer(divider + 4, buf + buf_size - divider - 4, slices[n_slices].buf);
  5048. init_get_bits(&slices[n_slices].gb, slices[n_slices].buf,
  5049. buf_size3 << 3);
  5050. slices[n_slices].mby_start = s->mb_height >> 1;
  5051. n_slices1 = n_slices - 1;
  5052. n_slices++;
  5053. }
  5054. buf_size2 = vc1_unescape_buffer(buf, divider - buf, buf2);
  5055. } else {
  5056. buf_size2 = vc1_unescape_buffer(buf, buf_size, buf2);
  5057. }
  5058. init_get_bits(&s->gb, buf2, buf_size2*8);
  5059. } else
  5060. init_get_bits(&s->gb, buf, buf_size*8);
  5061. if (v->res_sprite) {
  5062. v->new_sprite = !get_bits1(&s->gb);
  5063. v->two_sprites = get_bits1(&s->gb);
  5064. /* res_sprite means a Windows Media Image stream, AV_CODEC_ID_*IMAGE means
  5065. we're using the sprite compositor. These are intentionally kept separate
  5066. so you can get the raw sprites by using the wmv3 decoder for WMVP or
  5067. the vc1 one for WVP2 */
  5068. if (avctx->codec_id == AV_CODEC_ID_WMV3IMAGE || avctx->codec_id == AV_CODEC_ID_VC1IMAGE) {
  5069. if (v->new_sprite) {
  5070. // switch AVCodecContext parameters to those of the sprites
  5071. avctx->width = avctx->coded_width = v->sprite_width;
  5072. avctx->height = avctx->coded_height = v->sprite_height;
  5073. } else {
  5074. goto image;
  5075. }
  5076. }
  5077. }
  5078. if (s->context_initialized &&
  5079. (s->width != avctx->coded_width ||
  5080. s->height != avctx->coded_height)) {
  5081. ff_vc1_decode_end(avctx);
  5082. }
  5083. if (!s->context_initialized) {
  5084. if (ff_msmpeg4_decode_init(avctx) < 0 || ff_vc1_decode_init_alloc_tables(v) < 0)
  5085. goto err;
  5086. s->low_delay = !avctx->has_b_frames || v->res_sprite;
  5087. if (v->profile == PROFILE_ADVANCED) {
  5088. if(avctx->coded_width<=1 || avctx->coded_height<=1)
  5089. goto err;
  5090. s->h_edge_pos = avctx->coded_width;
  5091. s->v_edge_pos = avctx->coded_height;
  5092. }
  5093. }
  5094. /* We need to set current_picture_ptr before reading the header,
  5095. * otherwise we cannot store anything in there. */
  5096. if (s->current_picture_ptr == NULL || s->current_picture_ptr->f.data[0]) {
  5097. int i = ff_find_unused_picture(s, 0);
  5098. if (i < 0)
  5099. goto err;
  5100. s->current_picture_ptr = &s->picture[i];
  5101. }
  5102. // do parse frame header
  5103. v->pic_header_flag = 0;
  5104. v->first_pic_header_flag = 1;
  5105. if (v->profile < PROFILE_ADVANCED) {
  5106. if (ff_vc1_parse_frame_header(v, &s->gb) < 0) {
  5107. goto err;
  5108. }
  5109. } else {
  5110. if (ff_vc1_parse_frame_header_adv(v, &s->gb) < 0) {
  5111. goto err;
  5112. }
  5113. }
  5114. v->first_pic_header_flag = 0;
  5115. if (avctx->debug & FF_DEBUG_PICT_INFO)
  5116. av_log(v->s.avctx, AV_LOG_DEBUG, "pict_type: %c\n", av_get_picture_type_char(s->pict_type));
  5117. if ((avctx->codec_id == AV_CODEC_ID_WMV3IMAGE || avctx->codec_id == AV_CODEC_ID_VC1IMAGE)
  5118. && s->pict_type != AV_PICTURE_TYPE_I) {
  5119. av_log(v->s.avctx, AV_LOG_ERROR, "Sprite decoder: expected I-frame\n");
  5120. goto err;
  5121. }
  5122. if ((s->mb_height >> v->field_mode) == 0) {
  5123. av_log(v->s.avctx, AV_LOG_ERROR, "image too short\n");
  5124. goto err;
  5125. }
  5126. // process pulldown flags
  5127. s->current_picture_ptr->f.repeat_pict = 0;
  5128. // Pulldown flags are only valid when 'broadcast' has been set.
  5129. // So ticks_per_frame will be 2
  5130. if (v->rff) {
  5131. // repeat field
  5132. s->current_picture_ptr->f.repeat_pict = 1;
  5133. } else if (v->rptfrm) {
  5134. // repeat frames
  5135. s->current_picture_ptr->f.repeat_pict = v->rptfrm * 2;
  5136. }
  5137. // for skipping the frame
  5138. s->current_picture.f.pict_type = s->pict_type;
  5139. s->current_picture.f.key_frame = s->pict_type == AV_PICTURE_TYPE_I;
  5140. /* skip B-frames if we don't have reference frames */
  5141. if (s->last_picture_ptr == NULL && (s->pict_type == AV_PICTURE_TYPE_B || s->droppable)) {
  5142. goto err;
  5143. }
  5144. if ((avctx->skip_frame >= AVDISCARD_NONREF && s->pict_type == AV_PICTURE_TYPE_B) ||
  5145. (avctx->skip_frame >= AVDISCARD_NONKEY && s->pict_type != AV_PICTURE_TYPE_I) ||
  5146. avctx->skip_frame >= AVDISCARD_ALL) {
  5147. goto end;
  5148. }
  5149. if (s->next_p_frame_damaged) {
  5150. if (s->pict_type == AV_PICTURE_TYPE_B)
  5151. goto end;
  5152. else
  5153. s->next_p_frame_damaged = 0;
  5154. }
  5155. if (ff_MPV_frame_start(s, avctx) < 0) {
  5156. goto err;
  5157. }
  5158. v->s.current_picture_ptr->f.interlaced_frame = (v->fcm != PROGRESSIVE);
  5159. v->s.current_picture_ptr->f.top_field_first = v->tff;
  5160. s->me.qpel_put = s->dsp.put_qpel_pixels_tab;
  5161. s->me.qpel_avg = s->dsp.avg_qpel_pixels_tab;
  5162. if ((CONFIG_VC1_VDPAU_DECODER)
  5163. &&s->avctx->codec->capabilities&CODEC_CAP_HWACCEL_VDPAU)
  5164. ff_vdpau_vc1_decode_picture(s, buf_start, (buf + buf_size) - buf_start);
  5165. else if (avctx->hwaccel) {
  5166. if (v->field_mode && buf_start_second_field) {
  5167. // decode first field
  5168. s->picture_structure = PICT_BOTTOM_FIELD - v->tff;
  5169. if (avctx->hwaccel->start_frame(avctx, buf_start, buf_start_second_field - buf_start) < 0)
  5170. goto err;
  5171. if (avctx->hwaccel->decode_slice(avctx, buf_start, buf_start_second_field - buf_start) < 0)
  5172. goto err;
  5173. if (avctx->hwaccel->end_frame(avctx) < 0)
  5174. goto err;
  5175. // decode second field
  5176. s->gb = slices[n_slices1 + 1].gb;
  5177. s->picture_structure = PICT_TOP_FIELD + v->tff;
  5178. v->second_field = 1;
  5179. v->pic_header_flag = 0;
  5180. if (ff_vc1_parse_frame_header_adv(v, &s->gb) < 0) {
  5181. av_log(avctx, AV_LOG_ERROR, "parsing header for second field failed");
  5182. goto err;
  5183. }
  5184. v->s.current_picture_ptr->f.pict_type = v->s.pict_type;
  5185. if (avctx->hwaccel->start_frame(avctx, buf_start_second_field, (buf + buf_size) - buf_start_second_field) < 0)
  5186. goto err;
  5187. if (avctx->hwaccel->decode_slice(avctx, buf_start_second_field, (buf + buf_size) - buf_start_second_field) < 0)
  5188. goto err;
  5189. if (avctx->hwaccel->end_frame(avctx) < 0)
  5190. goto err;
  5191. } else {
  5192. s->picture_structure = PICT_FRAME;
  5193. if (avctx->hwaccel->start_frame(avctx, buf_start, (buf + buf_size) - buf_start) < 0)
  5194. goto err;
  5195. if (avctx->hwaccel->decode_slice(avctx, buf_start, (buf + buf_size) - buf_start) < 0)
  5196. goto err;
  5197. if (avctx->hwaccel->end_frame(avctx) < 0)
  5198. goto err;
  5199. }
  5200. } else {
  5201. int header_ret = 0;
  5202. if (v->fcm == ILACE_FRAME && s->pict_type == AV_PICTURE_TYPE_B)
  5203. goto err; // This codepath is still incomplete thus it is disabled
  5204. ff_mpeg_er_frame_start(s);
  5205. v->bits = buf_size * 8;
  5206. v->end_mb_x = s->mb_width;
  5207. if (v->field_mode) {
  5208. uint8_t *tmp[2];
  5209. s->current_picture.f.linesize[0] <<= 1;
  5210. s->current_picture.f.linesize[1] <<= 1;
  5211. s->current_picture.f.linesize[2] <<= 1;
  5212. s->linesize <<= 1;
  5213. s->uvlinesize <<= 1;
  5214. tmp[0] = v->mv_f_last[0];
  5215. tmp[1] = v->mv_f_last[1];
  5216. v->mv_f_last[0] = v->mv_f_next[0];
  5217. v->mv_f_last[1] = v->mv_f_next[1];
  5218. v->mv_f_next[0] = v->mv_f[0];
  5219. v->mv_f_next[1] = v->mv_f[1];
  5220. v->mv_f[0] = tmp[0];
  5221. v->mv_f[1] = tmp[1];
  5222. }
  5223. mb_height = s->mb_height >> v->field_mode;
  5224. for (i = 0; i <= n_slices; i++) {
  5225. if (i > 0 && slices[i - 1].mby_start >= mb_height) {
  5226. if (v->field_mode <= 0) {
  5227. av_log(v->s.avctx, AV_LOG_ERROR, "Slice %d starts beyond "
  5228. "picture boundary (%d >= %d)\n", i,
  5229. slices[i - 1].mby_start, mb_height);
  5230. continue;
  5231. }
  5232. v->second_field = 1;
  5233. v->blocks_off = s->b8_stride * (s->mb_height&~1);
  5234. v->mb_off = s->mb_stride * s->mb_height >> 1;
  5235. } else {
  5236. v->second_field = 0;
  5237. v->blocks_off = 0;
  5238. v->mb_off = 0;
  5239. }
  5240. if (i) {
  5241. v->pic_header_flag = 0;
  5242. if (v->field_mode && i == n_slices1 + 2) {
  5243. if ((header_ret = ff_vc1_parse_frame_header_adv(v, &s->gb)) < 0) {
  5244. av_log(v->s.avctx, AV_LOG_ERROR, "Field header damaged\n");
  5245. continue;
  5246. }
  5247. } else if (get_bits1(&s->gb)) {
  5248. v->pic_header_flag = 1;
  5249. if ((header_ret = ff_vc1_parse_frame_header_adv(v, &s->gb)) < 0) {
  5250. av_log(v->s.avctx, AV_LOG_ERROR, "Slice header damaged\n");
  5251. continue;
  5252. }
  5253. }
  5254. }
  5255. if (header_ret < 0)
  5256. continue;
  5257. s->start_mb_y = (i == 0) ? 0 : FFMAX(0, slices[i-1].mby_start % mb_height);
  5258. if (!v->field_mode || v->second_field)
  5259. s->end_mb_y = (i == n_slices ) ? mb_height : FFMIN(mb_height, slices[i].mby_start % mb_height);
  5260. else {
  5261. if (i >= n_slices) {
  5262. av_log(v->s.avctx, AV_LOG_ERROR, "first field slice count too large\n");
  5263. continue;
  5264. }
  5265. s->end_mb_y = (i <= n_slices1 + 1) ? mb_height : FFMIN(mb_height, slices[i].mby_start % mb_height);
  5266. }
  5267. if (s->end_mb_y <= s->start_mb_y) {
  5268. av_log(v->s.avctx, AV_LOG_ERROR, "end mb y %d %d invalid\n", s->end_mb_y, s->start_mb_y);
  5269. continue;
  5270. }
  5271. if (!v->p_frame_skipped && s->pict_type != AV_PICTURE_TYPE_I && !v->cbpcy_vlc) {
  5272. av_log(v->s.avctx, AV_LOG_ERROR, "missing cbpcy_vlc\n");
  5273. continue;
  5274. }
  5275. ff_vc1_decode_blocks(v);
  5276. if (i != n_slices)
  5277. s->gb = slices[i].gb;
  5278. }
  5279. if (v->field_mode) {
  5280. v->second_field = 0;
  5281. if (s->pict_type == AV_PICTURE_TYPE_B) {
  5282. memcpy(v->mv_f_base, v->mv_f_next_base,
  5283. 2 * (s->b8_stride * (s->mb_height * 2 + 1) + s->mb_stride * (s->mb_height + 1) * 2));
  5284. }
  5285. s->current_picture.f.linesize[0] >>= 1;
  5286. s->current_picture.f.linesize[1] >>= 1;
  5287. s->current_picture.f.linesize[2] >>= 1;
  5288. s->linesize >>= 1;
  5289. s->uvlinesize >>= 1;
  5290. }
  5291. av_dlog(s->avctx, "Consumed %i/%i bits\n",
  5292. get_bits_count(&s->gb), s->gb.size_in_bits);
  5293. // if (get_bits_count(&s->gb) > buf_size * 8)
  5294. // return -1;
  5295. if(s->er.error_occurred && s->pict_type == AV_PICTURE_TYPE_B)
  5296. goto err;
  5297. if(!v->field_mode)
  5298. ff_er_frame_end(&s->er);
  5299. }
  5300. ff_MPV_frame_end(s);
  5301. if (avctx->codec_id == AV_CODEC_ID_WMV3IMAGE || avctx->codec_id == AV_CODEC_ID_VC1IMAGE) {
  5302. image:
  5303. avctx->width = avctx->coded_width = v->output_width;
  5304. avctx->height = avctx->coded_height = v->output_height;
  5305. if (avctx->skip_frame >= AVDISCARD_NONREF)
  5306. goto end;
  5307. #if CONFIG_WMV3IMAGE_DECODER || CONFIG_VC1IMAGE_DECODER
  5308. if (vc1_decode_sprites(v, &s->gb))
  5309. goto err;
  5310. #endif
  5311. *pict = v->sprite_output_frame;
  5312. *got_frame = 1;
  5313. } else {
  5314. if (s->pict_type == AV_PICTURE_TYPE_B || s->low_delay) {
  5315. *pict = s->current_picture_ptr->f;
  5316. } else if (s->last_picture_ptr != NULL) {
  5317. *pict = s->last_picture_ptr->f;
  5318. }
  5319. if (s->last_picture_ptr || s->low_delay) {
  5320. *got_frame = 1;
  5321. ff_print_debug_info(s, pict);
  5322. }
  5323. }
  5324. end:
  5325. av_free(buf2);
  5326. for (i = 0; i < n_slices; i++)
  5327. av_free(slices[i].buf);
  5328. av_free(slices);
  5329. return buf_size;
  5330. err:
  5331. av_free(buf2);
  5332. for (i = 0; i < n_slices; i++)
  5333. av_free(slices[i].buf);
  5334. av_free(slices);
  5335. return -1;
  5336. }
  5337. static const AVProfile profiles[] = {
  5338. { FF_PROFILE_VC1_SIMPLE, "Simple" },
  5339. { FF_PROFILE_VC1_MAIN, "Main" },
  5340. { FF_PROFILE_VC1_COMPLEX, "Complex" },
  5341. { FF_PROFILE_VC1_ADVANCED, "Advanced" },
  5342. { FF_PROFILE_UNKNOWN },
  5343. };
  5344. static const enum AVPixelFormat vc1_hwaccel_pixfmt_list_420[] = {
  5345. #if CONFIG_DXVA2
  5346. AV_PIX_FMT_DXVA2_VLD,
  5347. #endif
  5348. #if CONFIG_VAAPI
  5349. AV_PIX_FMT_VAAPI_VLD,
  5350. #endif
  5351. #if CONFIG_VDPAU
  5352. AV_PIX_FMT_VDPAU,
  5353. #endif
  5354. AV_PIX_FMT_YUV420P,
  5355. AV_PIX_FMT_NONE
  5356. };
  5357. AVCodec ff_vc1_decoder = {
  5358. .name = "vc1",
  5359. .type = AVMEDIA_TYPE_VIDEO,
  5360. .id = AV_CODEC_ID_VC1,
  5361. .priv_data_size = sizeof(VC1Context),
  5362. .init = vc1_decode_init,
  5363. .close = ff_vc1_decode_end,
  5364. .decode = vc1_decode_frame,
  5365. .flush = ff_mpeg_flush,
  5366. .capabilities = CODEC_CAP_DR1 | CODEC_CAP_DELAY,
  5367. .long_name = NULL_IF_CONFIG_SMALL("SMPTE VC-1"),
  5368. .pix_fmts = vc1_hwaccel_pixfmt_list_420,
  5369. .profiles = NULL_IF_CONFIG_SMALL(profiles)
  5370. };
  5371. #if CONFIG_WMV3_DECODER
  5372. AVCodec ff_wmv3_decoder = {
  5373. .name = "wmv3",
  5374. .type = AVMEDIA_TYPE_VIDEO,
  5375. .id = AV_CODEC_ID_WMV3,
  5376. .priv_data_size = sizeof(VC1Context),
  5377. .init = vc1_decode_init,
  5378. .close = ff_vc1_decode_end,
  5379. .decode = vc1_decode_frame,
  5380. .flush = ff_mpeg_flush,
  5381. .capabilities = CODEC_CAP_DR1 | CODEC_CAP_DELAY,
  5382. .long_name = NULL_IF_CONFIG_SMALL("Windows Media Video 9"),
  5383. .pix_fmts = vc1_hwaccel_pixfmt_list_420,
  5384. .profiles = NULL_IF_CONFIG_SMALL(profiles)
  5385. };
  5386. #endif
  5387. #if CONFIG_WMV3_VDPAU_DECODER
  5388. AVCodec ff_wmv3_vdpau_decoder = {
  5389. .name = "wmv3_vdpau",
  5390. .type = AVMEDIA_TYPE_VIDEO,
  5391. .id = AV_CODEC_ID_WMV3,
  5392. .priv_data_size = sizeof(VC1Context),
  5393. .init = vc1_decode_init,
  5394. .close = ff_vc1_decode_end,
  5395. .decode = vc1_decode_frame,
  5396. .capabilities = CODEC_CAP_DR1 | CODEC_CAP_DELAY | CODEC_CAP_HWACCEL_VDPAU,
  5397. .long_name = NULL_IF_CONFIG_SMALL("Windows Media Video 9 VDPAU"),
  5398. .pix_fmts = (const enum AVPixelFormat[]){ AV_PIX_FMT_VDPAU_WMV3, AV_PIX_FMT_NONE },
  5399. .profiles = NULL_IF_CONFIG_SMALL(profiles)
  5400. };
  5401. #endif
  5402. #if CONFIG_VC1_VDPAU_DECODER
  5403. AVCodec ff_vc1_vdpau_decoder = {
  5404. .name = "vc1_vdpau",
  5405. .type = AVMEDIA_TYPE_VIDEO,
  5406. .id = AV_CODEC_ID_VC1,
  5407. .priv_data_size = sizeof(VC1Context),
  5408. .init = vc1_decode_init,
  5409. .close = ff_vc1_decode_end,
  5410. .decode = vc1_decode_frame,
  5411. .capabilities = CODEC_CAP_DR1 | CODEC_CAP_DELAY | CODEC_CAP_HWACCEL_VDPAU,
  5412. .long_name = NULL_IF_CONFIG_SMALL("SMPTE VC-1 VDPAU"),
  5413. .pix_fmts = (const enum AVPixelFormat[]){ AV_PIX_FMT_VDPAU_VC1, AV_PIX_FMT_NONE },
  5414. .profiles = NULL_IF_CONFIG_SMALL(profiles)
  5415. };
  5416. #endif
  5417. #if CONFIG_WMV3IMAGE_DECODER
  5418. AVCodec ff_wmv3image_decoder = {
  5419. .name = "wmv3image",
  5420. .type = AVMEDIA_TYPE_VIDEO,
  5421. .id = AV_CODEC_ID_WMV3IMAGE,
  5422. .priv_data_size = sizeof(VC1Context),
  5423. .init = vc1_decode_init,
  5424. .close = ff_vc1_decode_end,
  5425. .decode = vc1_decode_frame,
  5426. .capabilities = CODEC_CAP_DR1,
  5427. .flush = vc1_sprite_flush,
  5428. .long_name = NULL_IF_CONFIG_SMALL("Windows Media Video 9 Image"),
  5429. .pix_fmts = ff_pixfmt_list_420
  5430. };
  5431. #endif
  5432. #if CONFIG_VC1IMAGE_DECODER
  5433. AVCodec ff_vc1image_decoder = {
  5434. .name = "vc1image",
  5435. .type = AVMEDIA_TYPE_VIDEO,
  5436. .id = AV_CODEC_ID_VC1IMAGE,
  5437. .priv_data_size = sizeof(VC1Context),
  5438. .init = vc1_decode_init,
  5439. .close = ff_vc1_decode_end,
  5440. .decode = vc1_decode_frame,
  5441. .capabilities = CODEC_CAP_DR1,
  5442. .flush = vc1_sprite_flush,
  5443. .long_name = NULL_IF_CONFIG_SMALL("Windows Media Video 9 Image v2"),
  5444. .pix_fmts = ff_pixfmt_list_420
  5445. };
  5446. #endif