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  1. /*
  2. * Copyright (C) 2006 Aurelien Jacobs <aurel@gnuage.org>
  3. *
  4. * This file is part of FFmpeg.
  5. *
  6. * FFmpeg is free software; you can redistribute it and/or
  7. * modify it under the terms of the GNU Lesser General Public
  8. * License as published by the Free Software Foundation; either
  9. * version 2.1 of the License, or (at your option) any later version.
  10. *
  11. * FFmpeg is distributed in the hope that it will be useful,
  12. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  14. * Lesser General Public License for more details.
  15. *
  16. * You should have received a copy of the GNU Lesser General Public
  17. * License along with FFmpeg; if not, write to the Free Software
  18. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  19. */
  20. /**
  21. * @file
  22. * VP5 and VP6 compatible video decoder (common features)
  23. */
  24. #include "avcodec.h"
  25. #include "bytestream.h"
  26. #include "internal.h"
  27. #include "h264chroma.h"
  28. #include "vp56.h"
  29. #include "vp56data.h"
  30. void ff_vp56_init_dequant(VP56Context *s, int quantizer)
  31. {
  32. s->quantizer = quantizer;
  33. s->dequant_dc = ff_vp56_dc_dequant[quantizer] << 2;
  34. s->dequant_ac = ff_vp56_ac_dequant[quantizer] << 2;
  35. }
  36. static int vp56_get_vectors_predictors(VP56Context *s, int row, int col,
  37. VP56Frame ref_frame)
  38. {
  39. int nb_pred = 0;
  40. VP56mv vect[2] = {{0,0}, {0,0}};
  41. int pos, offset;
  42. VP56mv mvp;
  43. for (pos=0; pos<12; pos++) {
  44. mvp.x = col + ff_vp56_candidate_predictor_pos[pos][0];
  45. mvp.y = row + ff_vp56_candidate_predictor_pos[pos][1];
  46. if (mvp.x < 0 || mvp.x >= s->mb_width ||
  47. mvp.y < 0 || mvp.y >= s->mb_height)
  48. continue;
  49. offset = mvp.x + s->mb_width*mvp.y;
  50. if (ff_vp56_reference_frame[s->macroblocks[offset].type] != ref_frame)
  51. continue;
  52. if ((s->macroblocks[offset].mv.x == vect[0].x &&
  53. s->macroblocks[offset].mv.y == vect[0].y) ||
  54. (s->macroblocks[offset].mv.x == 0 &&
  55. s->macroblocks[offset].mv.y == 0))
  56. continue;
  57. vect[nb_pred++] = s->macroblocks[offset].mv;
  58. if (nb_pred > 1) {
  59. nb_pred = -1;
  60. break;
  61. }
  62. s->vector_candidate_pos = pos;
  63. }
  64. s->vector_candidate[0] = vect[0];
  65. s->vector_candidate[1] = vect[1];
  66. return nb_pred+1;
  67. }
  68. static void vp56_parse_mb_type_models(VP56Context *s)
  69. {
  70. VP56RangeCoder *c = &s->c;
  71. VP56Model *model = s->modelp;
  72. int i, ctx, type;
  73. for (ctx=0; ctx<3; ctx++) {
  74. if (vp56_rac_get_prob_branchy(c, 174)) {
  75. int idx = vp56_rac_gets(c, 4);
  76. memcpy(model->mb_types_stats[ctx],
  77. ff_vp56_pre_def_mb_type_stats[idx][ctx],
  78. sizeof(model->mb_types_stats[ctx]));
  79. }
  80. if (vp56_rac_get_prob_branchy(c, 254)) {
  81. for (type=0; type<10; type++) {
  82. for(i=0; i<2; i++) {
  83. if (vp56_rac_get_prob_branchy(c, 205)) {
  84. int delta, sign = vp56_rac_get(c);
  85. delta = vp56_rac_get_tree(c, ff_vp56_pmbtm_tree,
  86. ff_vp56_mb_type_model_model);
  87. if (!delta)
  88. delta = 4 * vp56_rac_gets(c, 7);
  89. model->mb_types_stats[ctx][type][i] += (delta ^ -sign) + sign;
  90. }
  91. }
  92. }
  93. }
  94. }
  95. /* compute MB type probability tables based on previous MB type */
  96. for (ctx=0; ctx<3; ctx++) {
  97. int p[10];
  98. for (type=0; type<10; type++)
  99. p[type] = 100 * model->mb_types_stats[ctx][type][1];
  100. for (type=0; type<10; type++) {
  101. int p02, p34, p0234, p17, p56, p89, p5689, p156789;
  102. /* conservative MB type probability */
  103. model->mb_type[ctx][type][0] = 255 - (255 * model->mb_types_stats[ctx][type][0]) / (1 + model->mb_types_stats[ctx][type][0] + model->mb_types_stats[ctx][type][1]);
  104. p[type] = 0; /* same MB type => weight is null */
  105. /* binary tree parsing probabilities */
  106. p02 = p[0] + p[2];
  107. p34 = p[3] + p[4];
  108. p0234 = p02 + p34;
  109. p17 = p[1] + p[7];
  110. p56 = p[5] + p[6];
  111. p89 = p[8] + p[9];
  112. p5689 = p56 + p89;
  113. p156789 = p17 + p5689;
  114. model->mb_type[ctx][type][1] = 1 + 255 * p0234/(1+p0234+p156789);
  115. model->mb_type[ctx][type][2] = 1 + 255 * p02 / (1+p0234);
  116. model->mb_type[ctx][type][3] = 1 + 255 * p17 / (1+p156789);
  117. model->mb_type[ctx][type][4] = 1 + 255 * p[0] / (1+p02);
  118. model->mb_type[ctx][type][5] = 1 + 255 * p[3] / (1+p34);
  119. model->mb_type[ctx][type][6] = 1 + 255 * p[1] / (1+p17);
  120. model->mb_type[ctx][type][7] = 1 + 255 * p56 / (1+p5689);
  121. model->mb_type[ctx][type][8] = 1 + 255 * p[5] / (1+p56);
  122. model->mb_type[ctx][type][9] = 1 + 255 * p[8] / (1+p89);
  123. /* restore initial value */
  124. p[type] = 100 * model->mb_types_stats[ctx][type][1];
  125. }
  126. }
  127. }
  128. static VP56mb vp56_parse_mb_type(VP56Context *s,
  129. VP56mb prev_type, int ctx)
  130. {
  131. uint8_t *mb_type_model = s->modelp->mb_type[ctx][prev_type];
  132. VP56RangeCoder *c = &s->c;
  133. if (vp56_rac_get_prob_branchy(c, mb_type_model[0]))
  134. return prev_type;
  135. else
  136. return vp56_rac_get_tree(c, ff_vp56_pmbt_tree, mb_type_model);
  137. }
  138. static void vp56_decode_4mv(VP56Context *s, int row, int col)
  139. {
  140. VP56mv mv = {0,0};
  141. int type[4];
  142. int b;
  143. /* parse each block type */
  144. for (b=0; b<4; b++) {
  145. type[b] = vp56_rac_gets(&s->c, 2);
  146. if (type[b])
  147. type[b]++; /* only returns 0, 2, 3 or 4 (all INTER_PF) */
  148. }
  149. /* get vectors */
  150. for (b=0; b<4; b++) {
  151. switch (type[b]) {
  152. case VP56_MB_INTER_NOVEC_PF:
  153. s->mv[b] = (VP56mv) {0,0};
  154. break;
  155. case VP56_MB_INTER_DELTA_PF:
  156. s->parse_vector_adjustment(s, &s->mv[b]);
  157. break;
  158. case VP56_MB_INTER_V1_PF:
  159. s->mv[b] = s->vector_candidate[0];
  160. break;
  161. case VP56_MB_INTER_V2_PF:
  162. s->mv[b] = s->vector_candidate[1];
  163. break;
  164. }
  165. mv.x += s->mv[b].x;
  166. mv.y += s->mv[b].y;
  167. }
  168. /* this is the one selected for the whole MB for prediction */
  169. s->macroblocks[row * s->mb_width + col].mv = s->mv[3];
  170. /* chroma vectors are average luma vectors */
  171. if (s->avctx->codec->id == AV_CODEC_ID_VP5) {
  172. s->mv[4].x = s->mv[5].x = RSHIFT(mv.x,2);
  173. s->mv[4].y = s->mv[5].y = RSHIFT(mv.y,2);
  174. } else {
  175. s->mv[4] = s->mv[5] = (VP56mv) {mv.x/4, mv.y/4};
  176. }
  177. }
  178. static VP56mb vp56_decode_mv(VP56Context *s, int row, int col)
  179. {
  180. VP56mv *mv, vect = {0,0};
  181. int ctx, b;
  182. ctx = vp56_get_vectors_predictors(s, row, col, VP56_FRAME_PREVIOUS);
  183. s->mb_type = vp56_parse_mb_type(s, s->mb_type, ctx);
  184. s->macroblocks[row * s->mb_width + col].type = s->mb_type;
  185. switch (s->mb_type) {
  186. case VP56_MB_INTER_V1_PF:
  187. mv = &s->vector_candidate[0];
  188. break;
  189. case VP56_MB_INTER_V2_PF:
  190. mv = &s->vector_candidate[1];
  191. break;
  192. case VP56_MB_INTER_V1_GF:
  193. vp56_get_vectors_predictors(s, row, col, VP56_FRAME_GOLDEN);
  194. mv = &s->vector_candidate[0];
  195. break;
  196. case VP56_MB_INTER_V2_GF:
  197. vp56_get_vectors_predictors(s, row, col, VP56_FRAME_GOLDEN);
  198. mv = &s->vector_candidate[1];
  199. break;
  200. case VP56_MB_INTER_DELTA_PF:
  201. s->parse_vector_adjustment(s, &vect);
  202. mv = &vect;
  203. break;
  204. case VP56_MB_INTER_DELTA_GF:
  205. vp56_get_vectors_predictors(s, row, col, VP56_FRAME_GOLDEN);
  206. s->parse_vector_adjustment(s, &vect);
  207. mv = &vect;
  208. break;
  209. case VP56_MB_INTER_4V:
  210. vp56_decode_4mv(s, row, col);
  211. return s->mb_type;
  212. default:
  213. mv = &vect;
  214. break;
  215. }
  216. s->macroblocks[row*s->mb_width + col].mv = *mv;
  217. /* same vector for all blocks */
  218. for (b=0; b<6; b++)
  219. s->mv[b] = *mv;
  220. return s->mb_type;
  221. }
  222. static void vp56_add_predictors_dc(VP56Context *s, VP56Frame ref_frame)
  223. {
  224. int idx = s->idct_scantable[0];
  225. int b;
  226. for (b=0; b<6; b++) {
  227. VP56RefDc *ab = &s->above_blocks[s->above_block_idx[b]];
  228. VP56RefDc *lb = &s->left_block[ff_vp56_b6to4[b]];
  229. int count = 0;
  230. int dc = 0;
  231. int i;
  232. if (ref_frame == lb->ref_frame) {
  233. dc += lb->dc_coeff;
  234. count++;
  235. }
  236. if (ref_frame == ab->ref_frame) {
  237. dc += ab->dc_coeff;
  238. count++;
  239. }
  240. if (s->avctx->codec->id == AV_CODEC_ID_VP5)
  241. for (i=0; i<2; i++)
  242. if (count < 2 && ref_frame == ab[-1+2*i].ref_frame) {
  243. dc += ab[-1+2*i].dc_coeff;
  244. count++;
  245. }
  246. if (count == 0)
  247. dc = s->prev_dc[ff_vp56_b2p[b]][ref_frame];
  248. else if (count == 2)
  249. dc /= 2;
  250. s->block_coeff[b][idx] += dc;
  251. s->prev_dc[ff_vp56_b2p[b]][ref_frame] = s->block_coeff[b][idx];
  252. ab->dc_coeff = s->block_coeff[b][idx];
  253. ab->ref_frame = ref_frame;
  254. lb->dc_coeff = s->block_coeff[b][idx];
  255. lb->ref_frame = ref_frame;
  256. s->block_coeff[b][idx] *= s->dequant_dc;
  257. }
  258. }
  259. static void vp56_deblock_filter(VP56Context *s, uint8_t *yuv,
  260. ptrdiff_t stride, int dx, int dy)
  261. {
  262. int t = ff_vp56_filter_threshold[s->quantizer];
  263. if (dx) s->vp56dsp.edge_filter_hor(yuv + 10-dx , stride, t);
  264. if (dy) s->vp56dsp.edge_filter_ver(yuv + stride*(10-dy), stride, t);
  265. }
  266. static void vp56_mc(VP56Context *s, int b, int plane, uint8_t *src,
  267. ptrdiff_t stride, int x, int y)
  268. {
  269. uint8_t *dst = s->frames[VP56_FRAME_CURRENT]->data[plane] + s->block_offset[b];
  270. uint8_t *src_block;
  271. int src_offset;
  272. int overlap_offset = 0;
  273. int mask = s->vp56_coord_div[b] - 1;
  274. int deblock_filtering = s->deblock_filtering;
  275. int dx;
  276. int dy;
  277. if (s->avctx->skip_loop_filter >= AVDISCARD_ALL ||
  278. (s->avctx->skip_loop_filter >= AVDISCARD_NONKEY
  279. && !s->frames[VP56_FRAME_CURRENT]->key_frame))
  280. deblock_filtering = 0;
  281. dx = s->mv[b].x / s->vp56_coord_div[b];
  282. dy = s->mv[b].y / s->vp56_coord_div[b];
  283. if (b >= 4) {
  284. x /= 2;
  285. y /= 2;
  286. }
  287. x += dx - 2;
  288. y += dy - 2;
  289. if (x<0 || x+12>=s->plane_width[plane] ||
  290. y<0 || y+12>=s->plane_height[plane]) {
  291. s->vdsp.emulated_edge_mc(s->edge_emu_buffer,
  292. src + s->block_offset[b] + (dy-2)*stride + (dx-2),
  293. stride, stride,
  294. 12, 12, x, y,
  295. s->plane_width[plane],
  296. s->plane_height[plane]);
  297. src_block = s->edge_emu_buffer;
  298. src_offset = 2 + 2*stride;
  299. } else if (deblock_filtering) {
  300. /* only need a 12x12 block, but there is no such dsp function, */
  301. /* so copy a 16x12 block */
  302. s->hdsp.put_pixels_tab[0][0](s->edge_emu_buffer,
  303. src + s->block_offset[b] + (dy-2)*stride + (dx-2),
  304. stride, 12);
  305. src_block = s->edge_emu_buffer;
  306. src_offset = 2 + 2*stride;
  307. } else {
  308. src_block = src;
  309. src_offset = s->block_offset[b] + dy*stride + dx;
  310. }
  311. if (deblock_filtering)
  312. vp56_deblock_filter(s, src_block, stride, dx&7, dy&7);
  313. if (s->mv[b].x & mask)
  314. overlap_offset += (s->mv[b].x > 0) ? 1 : -1;
  315. if (s->mv[b].y & mask)
  316. overlap_offset += (s->mv[b].y > 0) ? stride : -stride;
  317. if (overlap_offset) {
  318. if (s->filter)
  319. s->filter(s, dst, src_block, src_offset, src_offset+overlap_offset,
  320. stride, s->mv[b], mask, s->filter_selection, b<4);
  321. else
  322. s->vp3dsp.put_no_rnd_pixels_l2(dst, src_block+src_offset,
  323. src_block+src_offset+overlap_offset,
  324. stride, 8);
  325. } else {
  326. s->hdsp.put_pixels_tab[1][0](dst, src_block+src_offset, stride, 8);
  327. }
  328. }
  329. static int vp56_decode_mb(VP56Context *s, int row, int col, int is_alpha)
  330. {
  331. AVFrame *frame_current, *frame_ref;
  332. VP56mb mb_type;
  333. VP56Frame ref_frame;
  334. int b, ab, b_max, plane, off;
  335. int ret;
  336. if (s->frames[VP56_FRAME_CURRENT]->key_frame)
  337. mb_type = VP56_MB_INTRA;
  338. else
  339. mb_type = vp56_decode_mv(s, row, col);
  340. ref_frame = ff_vp56_reference_frame[mb_type];
  341. ret = s->parse_coeff(s);
  342. if (ret < 0)
  343. return ret;
  344. vp56_add_predictors_dc(s, ref_frame);
  345. frame_current = s->frames[VP56_FRAME_CURRENT];
  346. frame_ref = s->frames[ref_frame];
  347. if (mb_type != VP56_MB_INTRA && !frame_ref->data[0])
  348. return 0;
  349. ab = 6*is_alpha;
  350. b_max = 6 - 2*is_alpha;
  351. switch (mb_type) {
  352. case VP56_MB_INTRA:
  353. for (b=0; b<b_max; b++) {
  354. plane = ff_vp56_b2p[b+ab];
  355. s->vp3dsp.idct_put(frame_current->data[plane] + s->block_offset[b],
  356. s->stride[plane], s->block_coeff[b]);
  357. }
  358. break;
  359. case VP56_MB_INTER_NOVEC_PF:
  360. case VP56_MB_INTER_NOVEC_GF:
  361. for (b=0; b<b_max; b++) {
  362. plane = ff_vp56_b2p[b+ab];
  363. off = s->block_offset[b];
  364. s->hdsp.put_pixels_tab[1][0](frame_current->data[plane] + off,
  365. frame_ref->data[plane] + off,
  366. s->stride[plane], 8);
  367. s->vp3dsp.idct_add(frame_current->data[plane] + off,
  368. s->stride[plane], s->block_coeff[b]);
  369. }
  370. break;
  371. case VP56_MB_INTER_DELTA_PF:
  372. case VP56_MB_INTER_V1_PF:
  373. case VP56_MB_INTER_V2_PF:
  374. case VP56_MB_INTER_DELTA_GF:
  375. case VP56_MB_INTER_4V:
  376. case VP56_MB_INTER_V1_GF:
  377. case VP56_MB_INTER_V2_GF:
  378. for (b=0; b<b_max; b++) {
  379. int x_off = b==1 || b==3 ? 8 : 0;
  380. int y_off = b==2 || b==3 ? 8 : 0;
  381. plane = ff_vp56_b2p[b+ab];
  382. vp56_mc(s, b, plane, frame_ref->data[plane], s->stride[plane],
  383. 16*col+x_off, 16*row+y_off);
  384. s->vp3dsp.idct_add(frame_current->data[plane] + s->block_offset[b],
  385. s->stride[plane], s->block_coeff[b]);
  386. }
  387. break;
  388. }
  389. if (is_alpha) {
  390. s->block_coeff[4][0] = 0;
  391. s->block_coeff[5][0] = 0;
  392. }
  393. return 0;
  394. }
  395. static int vp56_size_changed(VP56Context *s)
  396. {
  397. AVCodecContext *avctx = s->avctx;
  398. int stride = s->frames[VP56_FRAME_CURRENT]->linesize[0];
  399. int i;
  400. s->plane_width[0] = s->plane_width[3] = avctx->coded_width;
  401. s->plane_width[1] = s->plane_width[2] = avctx->coded_width/2;
  402. s->plane_height[0] = s->plane_height[3] = avctx->coded_height;
  403. s->plane_height[1] = s->plane_height[2] = avctx->coded_height/2;
  404. for (i=0; i<4; i++)
  405. s->stride[i] = s->flip * s->frames[VP56_FRAME_CURRENT]->linesize[i];
  406. s->mb_width = (avctx->coded_width +15) / 16;
  407. s->mb_height = (avctx->coded_height+15) / 16;
  408. if (s->mb_width > 1000 || s->mb_height > 1000) {
  409. ff_set_dimensions(avctx, 0, 0);
  410. av_log(avctx, AV_LOG_ERROR, "picture too big\n");
  411. return AVERROR_INVALIDDATA;
  412. }
  413. av_reallocp_array(&s->above_blocks, 4*s->mb_width+6,
  414. sizeof(*s->above_blocks));
  415. av_reallocp_array(&s->macroblocks, s->mb_width*s->mb_height,
  416. sizeof(*s->macroblocks));
  417. av_free(s->edge_emu_buffer_alloc);
  418. s->edge_emu_buffer_alloc = av_malloc(16*stride);
  419. s->edge_emu_buffer = s->edge_emu_buffer_alloc;
  420. if (!s->above_blocks || !s->macroblocks || !s->edge_emu_buffer_alloc)
  421. return AVERROR(ENOMEM);
  422. if (s->flip < 0)
  423. s->edge_emu_buffer += 15 * stride;
  424. if (s->alpha_context)
  425. return vp56_size_changed(s->alpha_context);
  426. return 0;
  427. }
  428. static int ff_vp56_decode_mbs(AVCodecContext *avctx, void *, int, int);
  429. int ff_vp56_decode_frame(AVCodecContext *avctx, void *data, int *got_frame,
  430. AVPacket *avpkt)
  431. {
  432. const uint8_t *buf = avpkt->data;
  433. VP56Context *s = avctx->priv_data;
  434. AVFrame *const p = s->frames[VP56_FRAME_CURRENT];
  435. int remaining_buf_size = avpkt->size;
  436. int av_uninit(alpha_offset);
  437. int i, res;
  438. int ret;
  439. if (s->has_alpha) {
  440. if (remaining_buf_size < 3)
  441. return AVERROR_INVALIDDATA;
  442. alpha_offset = bytestream_get_be24(&buf);
  443. remaining_buf_size -= 3;
  444. if (remaining_buf_size < alpha_offset)
  445. return AVERROR_INVALIDDATA;
  446. }
  447. res = s->parse_header(s, buf, remaining_buf_size);
  448. if (res < 0)
  449. return res;
  450. if (res == VP56_SIZE_CHANGE) {
  451. for (i = 0; i < 4; i++) {
  452. av_frame_unref(s->frames[i]);
  453. if (s->alpha_context)
  454. av_frame_unref(s->alpha_context->frames[i]);
  455. }
  456. }
  457. ret = ff_get_buffer(avctx, p, AV_GET_BUFFER_FLAG_REF);
  458. if (ret < 0)
  459. return ret;
  460. if (avctx->pix_fmt == AV_PIX_FMT_YUVA420P) {
  461. av_frame_unref(s->alpha_context->frames[VP56_FRAME_CURRENT]);
  462. if ((ret = av_frame_ref(s->alpha_context->frames[VP56_FRAME_CURRENT], p)) < 0) {
  463. av_frame_unref(p);
  464. return ret;
  465. }
  466. }
  467. if (res == VP56_SIZE_CHANGE) {
  468. if (vp56_size_changed(s)) {
  469. av_frame_unref(p);
  470. return AVERROR_INVALIDDATA;
  471. }
  472. }
  473. if (avctx->pix_fmt == AV_PIX_FMT_YUVA420P) {
  474. int bak_w = avctx->width;
  475. int bak_h = avctx->height;
  476. int bak_cw = avctx->coded_width;
  477. int bak_ch = avctx->coded_height;
  478. buf += alpha_offset;
  479. remaining_buf_size -= alpha_offset;
  480. res = s->alpha_context->parse_header(s->alpha_context, buf, remaining_buf_size);
  481. if (res != 0) {
  482. if(res==VP56_SIZE_CHANGE) {
  483. av_log(avctx, AV_LOG_ERROR, "Alpha reconfiguration\n");
  484. avctx->width = bak_w;
  485. avctx->height = bak_h;
  486. avctx->coded_width = bak_cw;
  487. avctx->coded_height = bak_ch;
  488. }
  489. av_frame_unref(p);
  490. return AVERROR_INVALIDDATA;
  491. }
  492. }
  493. avctx->execute2(avctx, ff_vp56_decode_mbs, 0, 0, (avctx->pix_fmt == AV_PIX_FMT_YUVA420P) + 1);
  494. if ((res = av_frame_ref(data, p)) < 0)
  495. return res;
  496. *got_frame = 1;
  497. return avpkt->size;
  498. }
  499. static int ff_vp56_decode_mbs(AVCodecContext *avctx, void *data,
  500. int jobnr, int threadnr)
  501. {
  502. VP56Context *s0 = avctx->priv_data;
  503. int is_alpha = (jobnr == 1);
  504. VP56Context *s = is_alpha ? s0->alpha_context : s0;
  505. AVFrame *const p = s->frames[VP56_FRAME_CURRENT];
  506. int mb_row, mb_col, mb_row_flip, mb_offset = 0;
  507. int block, y, uv;
  508. ptrdiff_t stride_y, stride_uv;
  509. int res;
  510. if (p->key_frame) {
  511. p->pict_type = AV_PICTURE_TYPE_I;
  512. s->default_models_init(s);
  513. for (block=0; block<s->mb_height*s->mb_width; block++)
  514. s->macroblocks[block].type = VP56_MB_INTRA;
  515. } else {
  516. p->pict_type = AV_PICTURE_TYPE_P;
  517. vp56_parse_mb_type_models(s);
  518. s->parse_vector_models(s);
  519. s->mb_type = VP56_MB_INTER_NOVEC_PF;
  520. }
  521. if (s->parse_coeff_models(s))
  522. goto next;
  523. memset(s->prev_dc, 0, sizeof(s->prev_dc));
  524. s->prev_dc[1][VP56_FRAME_CURRENT] = 128;
  525. s->prev_dc[2][VP56_FRAME_CURRENT] = 128;
  526. for (block=0; block < 4*s->mb_width+6; block++) {
  527. s->above_blocks[block].ref_frame = VP56_FRAME_NONE;
  528. s->above_blocks[block].dc_coeff = 0;
  529. s->above_blocks[block].not_null_dc = 0;
  530. }
  531. s->above_blocks[2*s->mb_width + 2].ref_frame = VP56_FRAME_CURRENT;
  532. s->above_blocks[3*s->mb_width + 4].ref_frame = VP56_FRAME_CURRENT;
  533. stride_y = p->linesize[0];
  534. stride_uv = p->linesize[1];
  535. if (s->flip < 0)
  536. mb_offset = 7;
  537. /* main macroblocks loop */
  538. for (mb_row=0; mb_row<s->mb_height; mb_row++) {
  539. if (s->flip < 0)
  540. mb_row_flip = s->mb_height - mb_row - 1;
  541. else
  542. mb_row_flip = mb_row;
  543. for (block=0; block<4; block++) {
  544. s->left_block[block].ref_frame = VP56_FRAME_NONE;
  545. s->left_block[block].dc_coeff = 0;
  546. s->left_block[block].not_null_dc = 0;
  547. }
  548. memset(s->coeff_ctx, 0, sizeof(s->coeff_ctx));
  549. memset(s->coeff_ctx_last, 24, sizeof(s->coeff_ctx_last));
  550. s->above_block_idx[0] = 1;
  551. s->above_block_idx[1] = 2;
  552. s->above_block_idx[2] = 1;
  553. s->above_block_idx[3] = 2;
  554. s->above_block_idx[4] = 2*s->mb_width + 2 + 1;
  555. s->above_block_idx[5] = 3*s->mb_width + 4 + 1;
  556. s->block_offset[s->frbi] = (mb_row_flip*16 + mb_offset) * stride_y;
  557. s->block_offset[s->srbi] = s->block_offset[s->frbi] + 8*stride_y;
  558. s->block_offset[1] = s->block_offset[0] + 8;
  559. s->block_offset[3] = s->block_offset[2] + 8;
  560. s->block_offset[4] = (mb_row_flip*8 + mb_offset) * stride_uv;
  561. s->block_offset[5] = s->block_offset[4];
  562. for (mb_col=0; mb_col<s->mb_width; mb_col++) {
  563. int ret = vp56_decode_mb(s, mb_row, mb_col, is_alpha);
  564. if (ret < 0)
  565. return ret;
  566. for (y=0; y<4; y++) {
  567. s->above_block_idx[y] += 2;
  568. s->block_offset[y] += 16;
  569. }
  570. for (uv=4; uv<6; uv++) {
  571. s->above_block_idx[uv] += 1;
  572. s->block_offset[uv] += 8;
  573. }
  574. }
  575. }
  576. next:
  577. if (p->key_frame || s->golden_frame) {
  578. av_frame_unref(s->frames[VP56_FRAME_GOLDEN]);
  579. if ((res = av_frame_ref(s->frames[VP56_FRAME_GOLDEN], p)) < 0)
  580. return res;
  581. }
  582. av_frame_unref(s->frames[VP56_FRAME_PREVIOUS]);
  583. FFSWAP(AVFrame *, s->frames[VP56_FRAME_CURRENT],
  584. s->frames[VP56_FRAME_PREVIOUS]);
  585. return 0;
  586. }
  587. av_cold int ff_vp56_init(AVCodecContext *avctx, int flip, int has_alpha)
  588. {
  589. VP56Context *s = avctx->priv_data;
  590. return ff_vp56_init_context(avctx, s, flip, has_alpha);
  591. }
  592. av_cold int ff_vp56_init_context(AVCodecContext *avctx, VP56Context *s,
  593. int flip, int has_alpha)
  594. {
  595. int i;
  596. s->avctx = avctx;
  597. avctx->pix_fmt = has_alpha ? AV_PIX_FMT_YUVA420P : AV_PIX_FMT_YUV420P;
  598. if (avctx->skip_alpha) avctx->pix_fmt = AV_PIX_FMT_YUV420P;
  599. ff_h264chroma_init(&s->h264chroma, 8);
  600. ff_hpeldsp_init(&s->hdsp, avctx->flags);
  601. ff_videodsp_init(&s->vdsp, 8);
  602. ff_vp3dsp_init(&s->vp3dsp, avctx->flags);
  603. ff_vp56dsp_init(&s->vp56dsp, avctx->codec->id);
  604. for (i = 0; i < 64; i++) {
  605. #define TRANSPOSE(x) (((x) >> 3) | (((x) & 7) << 3))
  606. s->idct_scantable[i] = TRANSPOSE(ff_zigzag_direct[i]);
  607. #undef TRANSPOSE
  608. }
  609. for (i = 0; i < FF_ARRAY_ELEMS(s->frames); i++) {
  610. s->frames[i] = av_frame_alloc();
  611. if (!s->frames[i]) {
  612. ff_vp56_free(avctx);
  613. return AVERROR(ENOMEM);
  614. }
  615. }
  616. s->edge_emu_buffer_alloc = NULL;
  617. s->above_blocks = NULL;
  618. s->macroblocks = NULL;
  619. s->quantizer = -1;
  620. s->deblock_filtering = 1;
  621. s->golden_frame = 0;
  622. s->filter = NULL;
  623. s->has_alpha = has_alpha;
  624. s->modelp = &s->model;
  625. if (flip) {
  626. s->flip = -1;
  627. s->frbi = 2;
  628. s->srbi = 0;
  629. } else {
  630. s->flip = 1;
  631. s->frbi = 0;
  632. s->srbi = 2;
  633. }
  634. return 0;
  635. }
  636. av_cold int ff_vp56_free(AVCodecContext *avctx)
  637. {
  638. VP56Context *s = avctx->priv_data;
  639. return ff_vp56_free_context(s);
  640. }
  641. av_cold int ff_vp56_free_context(VP56Context *s)
  642. {
  643. int i;
  644. av_freep(&s->above_blocks);
  645. av_freep(&s->macroblocks);
  646. av_freep(&s->edge_emu_buffer_alloc);
  647. for (i = 0; i < FF_ARRAY_ELEMS(s->frames); i++)
  648. av_frame_free(&s->frames[i]);
  649. return 0;
  650. }