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161 lines
5.4 KiB
C
161 lines
5.4 KiB
C
/**
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* HEVC Encoder
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* - Marko Viitanen ( fador at iki.fi ), Tampere University of Technology, Department of Pervasive Computing.
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*/
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/*! \file search.c
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\brief searching
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\author Marko Viitanen
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\date 2013-04
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Search related functions
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*/
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#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include "global.h"
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#include "config.h"
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#include "bitstream.h"
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#include "picture.h"
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#include "intra.h"
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#include "encoder.h"
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#include "filter.h"
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#include "search.h"
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void search_tree(encoder_control* encoder,uint16_t xCtb,uint16_t yCtb, uint8_t depth)
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{
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uint8_t border_x = ((encoder->in.width)<( xCtb*(LCU_WIDTH>>MAX_DEPTH) + (LCU_WIDTH>>depth) ))?1:0;
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uint8_t border_y = ((encoder->in.height)<( yCtb*(LCU_WIDTH>>MAX_DEPTH) + (LCU_WIDTH>>depth) ))?1:0;
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uint8_t border = border_x | border_y; /*!< are we in any border CU */
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CU_info *cur_CU = &encoder->in.cur_pic.CU[depth][(xCtb>>(MAX_DEPTH-depth))+(yCtb>>(MAX_DEPTH-depth))*(encoder->in.width_in_LCU<<MAX_DEPTH)];
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cur_CU->intra.cost = (uint32_t)-1;
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/* Force split on border */
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if(depth != MAX_DEPTH)
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{
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if(border)
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{
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/* Split blocks and remember to change x and y block positions */
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uint8_t change = 1<<(MAX_DEPTH-1-depth);
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SET_SPLITDATA(cur_CU,1);
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search_tree(encoder,xCtb,yCtb,depth+1);
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if(!border_x)
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{
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search_tree(encoder,xCtb+change,yCtb,depth+1);
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}
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if(!border_y)
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{
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search_tree(encoder,xCtb,yCtb+change,depth+1);
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}
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if(!border)
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{
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search_tree(encoder,xCtb+change,yCtb+change,depth+1);
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}
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/* We don't need to do anything else here */
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return;
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}
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}
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if(encoder->in.cur_pic.slicetype != SLICE_I)
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{
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}
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/* INTRA SEARCH */
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if(depth > 0)
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{
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uint8_t *base = &encoder->in.cur_pic.yData[xCtb*(LCU_WIDTH>>(MAX_DEPTH)) + (yCtb*(LCU_WIDTH>>(MAX_DEPTH))) *encoder->in.width];
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uint8_t *baseU = &encoder->in.cur_pic.uData[xCtb*(LCU_WIDTH>>(MAX_DEPTH+1)) + (yCtb*(LCU_WIDTH>>(MAX_DEPTH+1)))*(encoder->in.width>>1)];
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uint8_t *baseV = &encoder->in.cur_pic.vData[xCtb*(LCU_WIDTH>>(MAX_DEPTH+1)) + (yCtb*(LCU_WIDTH>>(MAX_DEPTH+1)))*(encoder->in.width>>1)];
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uint32_t width = LCU_WIDTH>>depth;
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/* INTRAPREDICTION */
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/* ToDo: split to a function */
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int16_t pred[LCU_WIDTH*LCU_WIDTH];
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int16_t predU[LCU_WIDTH*LCU_WIDTH>>2];
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int16_t predV[LCU_WIDTH*LCU_WIDTH>>2];
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int16_t rec[(LCU_WIDTH*2+8)*(LCU_WIDTH*2+8)];
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int16_t *recShift = &rec[(LCU_WIDTH>>(depth))*2+8+1];
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int16_t *recShiftU = &rec[(LCU_WIDTH>>(depth+1))*2+8+1];
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uint8_t *recbase = &encoder->in.cur_pic.yRecData[xCtb*(LCU_WIDTH>>(MAX_DEPTH)) + (yCtb*(LCU_WIDTH>>(MAX_DEPTH))) *encoder->in.width];
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uint8_t *recbaseU = &encoder->in.cur_pic.uRecData[xCtb*(LCU_WIDTH>>(MAX_DEPTH+1)) + (yCtb*(LCU_WIDTH>>(MAX_DEPTH+1)))*(encoder->in.width>>1)];
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uint8_t *recbaseV = &encoder->in.cur_pic.vRecData[xCtb*(LCU_WIDTH>>(MAX_DEPTH+1)) + (yCtb*(LCU_WIDTH>>(MAX_DEPTH+1)))*(encoder->in.width>>1)];
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/* Build reconstructed block to use in prediction with extrapolated borders */
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intra_buildReferenceBorder(&encoder->in.cur_pic, xCtb, yCtb,(LCU_WIDTH>>(depth))*2+8, rec, (LCU_WIDTH>>(depth))*2+8, 0);
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cur_CU->intra.mode = (uint8_t)intra_prediction(encoder->in.cur_pic.yData,encoder->in.width,recShift,(LCU_WIDTH>>(depth))*2+8,xCtb*(LCU_WIDTH>>(MAX_DEPTH)),yCtb*(LCU_WIDTH>>(MAX_DEPTH)),width,pred,width,&cur_CU->intra.cost);
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}
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/* Split and search to max_depth */
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if(depth != 2)
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{
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/* Split blocks and remember to change x and y block positions */
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uint8_t change = 1<<(MAX_DEPTH-1-depth);
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search_tree(encoder,xCtb,yCtb,depth+1);
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search_tree(encoder,xCtb+change,yCtb,depth+1);
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search_tree(encoder,xCtb,yCtb+change,depth+1);
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search_tree(encoder,xCtb+change,yCtb+change,depth+1);
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}
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}
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uint32_t search_best_mode(encoder_control* encoder,uint16_t xCtb,uint16_t yCtb, uint8_t depth)
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{
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CU_info *cur_CU = &encoder->in.cur_pic.CU[depth][(xCtb>>(MAX_DEPTH-depth))+(yCtb>>(MAX_DEPTH-depth))*(encoder->in.width_in_LCU<<MAX_DEPTH)];
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uint32_t bestCost = cur_CU->intra.cost;
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int8_t bestMode = cur_CU->type;
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uint32_t cost = 0;
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/* Split and search to max_depth */
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if(depth != MAX_DEPTH)
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{
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/* Split blocks and remember to change x and y block positions */
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uint8_t change = 1<<(MAX_DEPTH-1-depth);
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cost = 4*g_lambda_cost[encoder->QP];
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cost += search_best_mode(encoder,xCtb,yCtb,depth+1);
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cost += search_best_mode(encoder,xCtb+change,yCtb,depth+1);
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cost += search_best_mode(encoder,xCtb,yCtb+change,depth+1);
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cost += search_best_mode(encoder,xCtb+change,yCtb+change,depth+1);
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if(cost != 0 && cost < bestCost)
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{
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cur_CU->split = 1;
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bestCost = cost;
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}
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else
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{
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cur_CU->split = 0;
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}
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}
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return bestCost;
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}
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void search_slice_data(encoder_control* encoder)
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{
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uint16_t xCtb,yCtb;
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/* Loop through every LCU in the slice */
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for(yCtb = 0; yCtb < encoder->in.height_in_LCU; yCtb++)
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{
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uint8_t lastCUy = (yCtb == (encoder->in.height_in_LCU-1))?1:0;
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for(xCtb = 0; xCtb < encoder->in.width_in_LCU; xCtb++)
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{
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uint8_t lastCUx = (xCtb == (encoder->in.width_in_LCU-1))?1:0;
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uint8_t depth = 0;
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/* Recursive function for looping through all the sub-blocks */
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search_tree(encoder, xCtb<<MAX_DEPTH,yCtb<<MAX_DEPTH, depth);
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/* Decide actual coding modes */
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search_best_mode(encoder, xCtb<<MAX_DEPTH,yCtb<<MAX_DEPTH, depth);
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}
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}
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} |