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Statistical Early Termination and Early Skip Models for Fast Mode Decision in HEVC INTRA Coding

机译:HEVC内部编码中快速模式决策的统计早期终止和早期跳过模型

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In this article, statistical Early Termination (ET) and Early Skip (ES) models are proposed for fast Coding Unit (CU) and prediction mode decision in HEVC INTRA coding, in which three categories of ET and ES sub-algorithms are included. First, the CU ranges of the current CU are recursively predicted based on the texture and CU depth of the spatial neighboring CUs. Second, the statistical model based ET and ES schemes are proposed and applied to optimize the CU and INTRA prediction mode decision, in which the coding complexities over different decision layers are jointly minimized subject to acceptable rate-distortion degradation. Third, the mode correlations among the INTRA prediction modes are exploited to early terminate the full rate-distortion optimization in each CU decision layer. Extensive experiments are performed to evaluate the coding performance of each sub-algorithm and the overall algorithm. Experimental results reveal that the overall proposed algorithm can achieve 45.47% to 74.77%, and 58.09% on average complexity reduction, while the overall Bjøntegaard delta bit rate increase and Bjøntegaard delta peak signal-to-noise ratio degradation are 2.29% and -0.11 dB, respectively.
机译:在本文中,提出了统计早期终止(ET)和早期跳过的模型,用于快速编码单元(CU)和HEVC帧内编码中的预测模式决策,其中包括三类ET和ES子算法。首先,基于空间相邻CU的纹理和Cu深度来递归地预测电流Cu的Cu范围。其次,提出并应用了基于统计模型的ET和ES方案以优化Cu和帧内预测模式决定,其中在不同决策层上的编码复杂性被共同最小化,经受可接受的速率失真劣化。第三,利用帧内预测模式之间的模式相关性以早期终止每个CU决策层中的全速率失真优化。进行广泛的实验以评估每个子算法和整个算法的编码性能。实验结果表明,整体提出的算法可以实现45.47%至74.77%,平均复杂性降低58.09%,而总体Bjøntegaarddelta比特率增加和bjøntegaarddelta峰值信噪比劣化为2.29%和-0.11 dB , 分别。

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