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Fast Bayesian decision based block partitioning algorithm for HEVC

机译:基于快速贝叶斯决策的HEVC块划分算法

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摘要

The newly published High Efficiency Video Coding (HEVC) Standard has greatly enhanced the coding performance in comparison to its predecessors. However, HEVC also has high computational complexity, which limits its application. In this paper, we propose a fast Bayesian Decision based Block Partitioning (BDBP) algorithm for HEVC encoder. Firstly, the scene change detection based on average grey difference is used to divide the video sequence into the online learning phase and the fast partitioning phase. Secondly, in the online learning phase, the statistical parameters are extracted from coding units (CUs) in every depth to establish the Gaussian mixture models which are resolved by expectation maximization algorithm; in the fast partitioning phase, the conditional probabilities for CU to decide partitioning and non-partitioning are calculated. Finally, the minimum risk Bayesian decision rule is used to choose the decision with smaller risk, and the decision is regarded as the judgment of the current CU. Experimental results show that the proposed algorithm reduces the computational complexity of HM13.0 to 54.1% in encoding time with 0.92% increase in the BD-Rate and 0.05dB decrease in the BD-PSNR. Moreover, the proposed algorithm also demonstrates better performance over other state-of-the-art work.
机译:与之前的版本相比,新发布的高效视频编码(HEVC)标准极大地提高了编码性能。但是,HEVC还具有很高的计算复杂度,从而限制了其应用。在本文中,我们提出了一种用于HEVC编码器的快速基于贝叶斯决策的块划分(BDBP)算法。首先,基于平均灰度差的场景变化检测被用于将视频序列分为在线学习阶段和快速划分阶段。其次,在在线学习阶段,从各个深度的编码单元中提取统计参数,以建立高斯混合模型,并通过期望最大化算法进行求解。在快速分区阶段,计算CU决定分区和不分区的条件概率。最后,采用最小风险贝叶斯决策规则选择风险较小的决策,该决策被视为当前CU的判断。实验结果表明,该算法在编码时间上将HM13.0的计算复杂度降低到54.1%,BD-Rate增加0.92%,BD-PSNR减少0.05dB。此外,所提出的算法还展示出优于其他最新技术的性能。

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