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@@ -143,56 +143,6 @@ static void filter_mb(AVSContext *h, enum mb_t mb_type) { |
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* |
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****************************************************************************/ |
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static inline void load_intra_pred_luma(AVSContext *h, uint8_t *top, |
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uint8_t **left, int block) { |
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int i; |
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switch(block) { |
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case 0: |
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*left = h->left_border_y; |
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h->left_border_y[0] = h->left_border_y[1]; |
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memset(&h->left_border_y[17],h->left_border_y[16],9); |
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memcpy(&top[1],&h->top_border_y[h->mbx*16],16); |
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top[17] = top[16]; |
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top[0] = top[1]; |
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if((h->flags & A_AVAIL) && (h->flags & B_AVAIL)) |
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h->left_border_y[0] = top[0] = h->topleft_border_y; |
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break; |
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case 1: |
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*left = h->intern_border_y; |
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for(i=0;i<8;i++) |
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h->intern_border_y[i+1] = *(h->cy + 7 + i*h->l_stride); |
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memset(&h->intern_border_y[9],h->intern_border_y[8],9); |
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h->intern_border_y[0] = h->intern_border_y[1]; |
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memcpy(&top[1],&h->top_border_y[h->mbx*16+8],8); |
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if(h->flags & C_AVAIL) |
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memcpy(&top[9],&h->top_border_y[(h->mbx + 1)*16],8); |
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else |
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memset(&top[9],top[8],9); |
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top[17] = top[16]; |
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top[0] = top[1]; |
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if(h->flags & B_AVAIL) |
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h->intern_border_y[0] = top[0] = h->top_border_y[h->mbx*16+7]; |
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break; |
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case 2: |
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*left = &h->left_border_y[8]; |
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memcpy(&top[1],h->cy + 7*h->l_stride,16); |
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top[17] = top[16]; |
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top[0] = top[1]; |
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if(h->flags & A_AVAIL) |
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top[0] = h->left_border_y[8]; |
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break; |
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case 3: |
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*left = &h->intern_border_y[8]; |
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for(i=0;i<8;i++) |
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h->intern_border_y[i+9] = *(h->cy + 7 + (i+8)*h->l_stride); |
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memset(&h->intern_border_y[17],h->intern_border_y[16],9); |
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memcpy(&top[0],h->cy + 7 + 7*h->l_stride,9); |
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memset(&top[9],top[8],9); |
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break; |
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} |
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} |
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static void intra_pred_vert(uint8_t *d,uint8_t *top,uint8_t *left,int stride) { |
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int y; |
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uint64_t a = unaligned64(&top[1]); |
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@@ -280,14 +230,6 @@ static void intra_pred_lp_top(uint8_t *d,uint8_t *top,uint8_t *left,int stride) |
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#undef LOWPASS |
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static inline void modify_pred(const int_fast8_t *mod_table, int *mode) { |
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*mode = mod_table[*mode]; |
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if(*mode < 0) { |
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av_log(NULL, AV_LOG_ERROR, "Illegal intra prediction mode\n"); |
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*mode = 0; |
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} |
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} |
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/***************************************************************************** |
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* |
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* motion compensation |
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@@ -421,20 +363,6 @@ static void inter_pred(AVSContext *h, enum mb_t mb_type) { |
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* |
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****************************************************************************/ |
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static inline void set_mvs(vector_t *mv, enum block_t size) { |
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switch(size) { |
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case BLK_16X16: |
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mv[MV_STRIDE ] = mv[0]; |
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mv[MV_STRIDE+1] = mv[0]; |
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case BLK_16X8: |
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mv[1] = mv[0]; |
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break; |
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case BLK_8X16: |
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mv[MV_STRIDE] = mv[0]; |
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break; |
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} |
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} |
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static inline void store_mvs(AVSContext *h) { |
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h->col_mv[(h->mby*h->mb_width + h->mbx)*4 + 0] = h->mv[MV_FWD_X0]; |
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h->col_mv[(h->mby*h->mb_width + h->mbx)*4 + 1] = h->mv[MV_FWD_X1]; |
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@@ -658,92 +586,6 @@ static inline int decode_residual_inter(AVSContext *h) { |
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* |
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****************************************************************************/ |
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/** |
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* initialise predictors for motion vectors and intra prediction |
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*/ |
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static inline void init_mb(AVSContext *h) { |
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int i; |
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/* copy predictors from top line (MB B and C) into cache */ |
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for(i=0;i<3;i++) { |
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h->mv[MV_FWD_B2+i] = h->top_mv[0][h->mbx*2+i]; |
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h->mv[MV_BWD_B2+i] = h->top_mv[1][h->mbx*2+i]; |
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} |
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h->pred_mode_Y[1] = h->top_pred_Y[h->mbx*2+0]; |
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h->pred_mode_Y[2] = h->top_pred_Y[h->mbx*2+1]; |
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/* clear top predictors if MB B is not available */ |
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if(!(h->flags & B_AVAIL)) { |
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h->mv[MV_FWD_B2] = ff_cavs_un_mv; |
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h->mv[MV_FWD_B3] = ff_cavs_un_mv; |
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h->mv[MV_BWD_B2] = ff_cavs_un_mv; |
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h->mv[MV_BWD_B3] = ff_cavs_un_mv; |
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h->pred_mode_Y[1] = h->pred_mode_Y[2] = NOT_AVAIL; |
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h->flags &= ~(C_AVAIL|D_AVAIL); |
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} else if(h->mbx) { |
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h->flags |= D_AVAIL; |
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} |
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if(h->mbx == h->mb_width-1) //MB C not available |
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h->flags &= ~C_AVAIL; |
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/* clear top-right predictors if MB C is not available */ |
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if(!(h->flags & C_AVAIL)) { |
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h->mv[MV_FWD_C2] = ff_cavs_un_mv; |
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h->mv[MV_BWD_C2] = ff_cavs_un_mv; |
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} |
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/* clear top-left predictors if MB D is not available */ |
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if(!(h->flags & D_AVAIL)) { |
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h->mv[MV_FWD_D3] = ff_cavs_un_mv; |
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h->mv[MV_BWD_D3] = ff_cavs_un_mv; |
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} |
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/* set pointer for co-located macroblock type */ |
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h->col_type = &h->col_type_base[h->mby*h->mb_width + h->mbx]; |
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} |
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static inline void check_for_slice(AVSContext *h); |
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/** |
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* save predictors for later macroblocks and increase |
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* macroblock address |
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* @returns 0 if end of frame is reached, 1 otherwise |
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*/ |
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static inline int next_mb(AVSContext *h) { |
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int i; |
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h->flags |= A_AVAIL; |
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h->cy += 16; |
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h->cu += 8; |
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h->cv += 8; |
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/* copy mvs as predictors to the left */ |
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for(i=0;i<=20;i+=4) |
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h->mv[i] = h->mv[i+2]; |
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/* copy bottom mvs from cache to top line */ |
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h->top_mv[0][h->mbx*2+0] = h->mv[MV_FWD_X2]; |
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h->top_mv[0][h->mbx*2+1] = h->mv[MV_FWD_X3]; |
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h->top_mv[1][h->mbx*2+0] = h->mv[MV_BWD_X2]; |
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h->top_mv[1][h->mbx*2+1] = h->mv[MV_BWD_X3]; |
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/* next MB address */ |
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h->mbx++; |
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if(h->mbx == h->mb_width) { //new mb line |
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h->flags = B_AVAIL|C_AVAIL; |
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/* clear left pred_modes */ |
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h->pred_mode_Y[3] = h->pred_mode_Y[6] = NOT_AVAIL; |
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/* clear left mv predictors */ |
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for(i=0;i<=20;i+=4) |
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h->mv[i] = ff_cavs_un_mv; |
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h->mbx = 0; |
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h->mby++; |
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/* re-calculate sample pointers */ |
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h->cy = h->picture.data[0] + h->mby*16*h->l_stride; |
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h->cu = h->picture.data[1] + h->mby*8*h->c_stride; |
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h->cv = h->picture.data[2] + h->mby*8*h->c_stride; |
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if(h->mby == h->mb_height) { //frame end |
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return 0; |
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} else { |
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//check_for_slice(h); |
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} |
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} |
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return 1; |
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} |
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static int decode_mb_i(AVSContext *h, int cbp_code) { |
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GetBitContext *gb = &h->s.gb; |
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int block, pred_mode_uv; |
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