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  1. /*
  2.  * VP8 compatible video decoder
  3.  *
  4.  * Copyright (C) 2010 David Conrad
  5.  * Copyright (C) 2010 Ronald S. Bultje
  6.  * Copyright (C) 2010 Jason Garrett-Glaser
  7.  * Copyright (C) 2012 Daniel Kang
  8.  *
  9.  * This file is part of FFmpeg.
  10.  *
  11.  * FFmpeg is free software; you can redistribute it and/or
  12.  * modify it under the terms of the GNU Lesser General Public
  13.  * License as published by the Free Software Foundation; either
  14.  * version 2.1 of the License, or (at your option) any later version.
  15.  *
  16.  * FFmpeg is distributed in the hope that it will be useful,
  17.  * but WITHOUT ANY WARRANTY; without even the implied warranty of
  18.  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
  19.  * Lesser General Public License for more details.
  20.  *
  21.  * You should have received a copy of the GNU Lesser General Public
  22.  * License along with FFmpeg; if not, write to the Free Software
  23.  * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
  24.  */
  25.  
  26. #ifndef AVCODEC_VP8_H
  27. #define AVCODEC_VP8_H
  28.  
  29. #include "libavutil/buffer.h"
  30.  
  31. #include "vp56.h"
  32. #include "vp8dsp.h"
  33. #include "h264pred.h"
  34. #include "thread.h"
  35. #if HAVE_PTHREADS
  36. #include <pthread.h>
  37. #elif HAVE_OS2THREADS
  38. #include "compat/os2threads.h"
  39. #elif HAVE_W32THREADS
  40. #include "compat/w32pthreads.h"
  41. #endif
  42.  
  43. #define VP8_MAX_QUANT 127
  44.  
  45. enum dct_token {
  46.     DCT_0,
  47.     DCT_1,
  48.     DCT_2,
  49.     DCT_3,
  50.     DCT_4,
  51.     DCT_CAT1,
  52.     DCT_CAT2,
  53.     DCT_CAT3,
  54.     DCT_CAT4,
  55.     DCT_CAT5,
  56.     DCT_CAT6,
  57.     DCT_EOB,
  58.  
  59.     NUM_DCT_TOKENS
  60. };
  61.  
  62. // used to signal 4x4 intra pred in luma MBs
  63. #define MODE_I4x4 4
  64.  
  65. enum inter_mvmode {
  66.     VP8_MVMODE_ZERO = MODE_I4x4 + 1,
  67.     VP8_MVMODE_MV,
  68.     VP8_MVMODE_SPLIT
  69. };
  70.  
  71. enum inter_splitmvmode {
  72.     VP8_SPLITMVMODE_16x8 = 0,    ///< 2 16x8 blocks (vertical)
  73.     VP8_SPLITMVMODE_8x16,        ///< 2 8x16 blocks (horizontal)
  74.     VP8_SPLITMVMODE_8x8,         ///< 2x2 blocks of 8x8px each
  75.     VP8_SPLITMVMODE_4x4,         ///< 4x4 blocks of 4x4px each
  76.     VP8_SPLITMVMODE_NONE,        ///< (only used in prediction) no split MVs
  77. };
  78.  
  79. typedef struct VP8FilterStrength {
  80.     uint8_t filter_level;
  81.     uint8_t inner_limit;
  82.     uint8_t inner_filter;
  83. } VP8FilterStrength;
  84.  
  85. typedef struct VP8Macroblock {
  86.     uint8_t skip;
  87.     // todo: make it possible to check for at least (i4x4 or split_mv)
  88.     // in one op. are others needed?
  89.     uint8_t mode;
  90.     uint8_t ref_frame;
  91.     uint8_t partitioning;
  92.     uint8_t chroma_pred_mode;
  93.     uint8_t segment;
  94.     uint8_t intra4x4_pred_mode_mb[16];
  95.     uint8_t intra4x4_pred_mode_top[4];
  96.     VP56mv mv;
  97.     VP56mv bmv[16];
  98. } VP8Macroblock;
  99.  
  100. typedef struct VP8ThreadData {
  101.     DECLARE_ALIGNED(16, int16_t, block)[6][4][16];
  102.     DECLARE_ALIGNED(16, int16_t, block_dc)[16];
  103.     /**
  104.      * This is the index plus one of the last non-zero coeff
  105.      * for each of the blocks in the current macroblock.
  106.      * So, 0 -> no coeffs
  107.      *     1 -> dc-only (special transform)
  108.      *     2+-> full transform
  109.      */
  110.     DECLARE_ALIGNED(16, uint8_t, non_zero_count_cache)[6][4];
  111.     /**
  112.      * For coeff decode, we need to know whether the above block had non-zero
  113.      * coefficients. This means for each macroblock, we need data for 4 luma
  114.      * blocks, 2 u blocks, 2 v blocks, and the luma dc block, for a total of 9
  115.      * per macroblock. We keep the last row in top_nnz.
  116.      */
  117.     DECLARE_ALIGNED(8, uint8_t, left_nnz)[9];
  118.     int thread_nr;
  119. #if HAVE_THREADS
  120.     pthread_mutex_t lock;
  121.     pthread_cond_t  cond;
  122. #endif
  123.     int thread_mb_pos; // (mb_y << 16) | (mb_x & 0xFFFF)
  124.     int wait_mb_pos; // What the current thread is waiting on.
  125.     DECLARE_ALIGNED(16, uint8_t, edge_emu_buffer)[21*32];
  126.     VP8FilterStrength *filter_strength;
  127. } VP8ThreadData;
  128.  
  129. typedef struct VP8Frame {
  130.     ThreadFrame tf;
  131.     AVBufferRef *seg_map;
  132. } VP8Frame;
  133.  
  134. #define MAX_THREADS 8
  135. typedef struct VP8Context {
  136.     VP8ThreadData *thread_data;
  137.     AVCodecContext *avctx;
  138.     VP8Frame *framep[4];
  139.     VP8Frame *next_framep[4];
  140.     VP8Frame *curframe;
  141.     VP8Frame *prev_frame;
  142.  
  143.     uint16_t mb_width;   /* number of horizontal MB */
  144.     uint16_t mb_height;  /* number of vertical MB */
  145.     int linesize;
  146.     int uvlinesize;
  147.  
  148.     uint8_t keyframe;
  149.     uint8_t deblock_filter;
  150.     uint8_t mbskip_enabled;
  151.     uint8_t profile;
  152.     VP56mv mv_min;
  153.     VP56mv mv_max;
  154.  
  155.     int8_t sign_bias[4]; ///< one state [0, 1] per ref frame type
  156.     int ref_count[3];
  157.  
  158.     /**
  159.      * Base parameters for segmentation, i.e. per-macroblock parameters.
  160.      * These must be kept unchanged even if segmentation is not used for
  161.      * a frame, since the values persist between interframes.
  162.      */
  163.     struct {
  164.         uint8_t enabled;
  165.         uint8_t absolute_vals;
  166.         uint8_t update_map;
  167.         int8_t base_quant[4];
  168.         int8_t filter_level[4];     ///< base loop filter level
  169.     } segmentation;
  170.  
  171.     struct {
  172.         uint8_t simple;
  173.         uint8_t level;
  174.         uint8_t sharpness;
  175.     } filter;
  176.  
  177.     VP8Macroblock *macroblocks;
  178.  
  179.     uint8_t *intra4x4_pred_mode_top;
  180.     uint8_t intra4x4_pred_mode_left[4];
  181.  
  182.     /**
  183.      * Macroblocks can have one of 4 different quants in a frame when
  184.      * segmentation is enabled.
  185.      * If segmentation is disabled, only the first segment's values are used.
  186.      */
  187.     struct {
  188.         // [0] - DC qmul  [1] - AC qmul
  189.         int16_t luma_qmul[2];
  190.         int16_t luma_dc_qmul[2];    ///< luma dc-only block quant
  191.         int16_t chroma_qmul[2];
  192.     } qmat[4];
  193.  
  194.     struct {
  195.         uint8_t enabled;    ///< whether each mb can have a different strength based on mode/ref
  196.  
  197.         /**
  198.          * filter strength adjustment for the following macroblock modes:
  199.          * [0-3] - i16x16 (always zero)
  200.          * [4]   - i4x4
  201.          * [5]   - zero mv
  202.          * [6]   - inter modes except for zero or split mv
  203.          * [7]   - split mv
  204.          *  i16x16 modes never have any adjustment
  205.          */
  206.         int8_t mode[VP8_MVMODE_SPLIT+1];
  207.  
  208.         /**
  209.          * filter strength adjustment for macroblocks that reference:
  210.          * [0] - intra / VP56_FRAME_CURRENT
  211.          * [1] - VP56_FRAME_PREVIOUS
  212.          * [2] - VP56_FRAME_GOLDEN
  213.          * [3] - altref / VP56_FRAME_GOLDEN2
  214.          */
  215.         int8_t ref[4];
  216.     } lf_delta;
  217.  
  218.     uint8_t (*top_border)[16+8+8];
  219.     uint8_t (*top_nnz)[9];
  220.  
  221.     VP56RangeCoder c;   ///< header context, includes mb modes and motion vectors
  222.  
  223.     /**
  224.      * These are all of the updatable probabilities for binary decisions.
  225.      * They are only implictly reset on keyframes, making it quite likely
  226.      * for an interframe to desync if a prior frame's header was corrupt
  227.      * or missing outright!
  228.      */
  229.     struct {
  230.         uint8_t segmentid[3];
  231.         uint8_t mbskip;
  232.         uint8_t intra;
  233.         uint8_t last;
  234.         uint8_t golden;
  235.         uint8_t pred16x16[4];
  236.         uint8_t pred8x8c[3];
  237.         uint8_t token[4][16][3][NUM_DCT_TOKENS-1];
  238.         uint8_t mvc[2][19];
  239.     } prob[2];
  240.  
  241.     VP8Macroblock *macroblocks_base;
  242.     int invisible;
  243.     int update_last;    ///< update VP56_FRAME_PREVIOUS with the current one
  244.     int update_golden;  ///< VP56_FRAME_NONE if not updated, or which frame to copy if so
  245.     int update_altref;
  246.  
  247.     /**
  248.      * If this flag is not set, all the probability updates
  249.      * are discarded after this frame is decoded.
  250.      */
  251.     int update_probabilities;
  252.  
  253.     /**
  254.      * All coefficients are contained in separate arith coding contexts.
  255.      * There can be 1, 2, 4, or 8 of these after the header context.
  256.      */
  257.     int num_coeff_partitions;
  258.     VP56RangeCoder coeff_partition[8];
  259.     VideoDSPContext vdsp;
  260.     VP8DSPContext vp8dsp;
  261.     H264PredContext hpc;
  262.     vp8_mc_func put_pixels_tab[3][3][3];
  263.     VP8Frame frames[5];
  264.  
  265.     int num_jobs;
  266.     /**
  267.      * This describes the macroblock memory layout.
  268.      * 0 -> Only width+height*2+1 macroblocks allocated (frame/single thread).
  269.      * 1 -> Macroblocks for entire frame alloced (sliced thread).
  270.      */
  271.     int mb_layout;
  272. } VP8Context;
  273.  
  274. int ff_vp8_decode_init(AVCodecContext *avctx);
  275.  
  276. int ff_vp8_decode_frame(AVCodecContext *avctx, void *data, int *got_frame,
  277.                         AVPacket *avpkt);
  278.  
  279. int ff_vp8_decode_free(AVCodecContext *avctx);
  280.  
  281. #endif /* AVCODEC_VP8_H */
  282.