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Online-Learning-Based Bayesian Decision Rule for Fast Intra Mode and CU Partitioning Algorithm in HEVC Screen Content Coding

机译:HEVC屏幕内容编码中基于在线学习的快速贝叶斯决策规则和CU划分算法

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Screen content coding (SCC) is an extension of high efficiency video coding by adopting new coding modes to improve the coding efficiency of SCC at the expense of increased complexity. This paper proposes an online-learning approach for fast mode decision and coding unit (CU) size decision in SCC. To make a fast mode decision, the corner point is first extracted as a unique feature in screen content, which is an essential pre-processing step to guide Bayesian decision modeling. Second, the distinct color number in a CU is derived as another unique feature in screen content to build the precise model using online-learning for skipping unnecessary modes. Third, the correlation of the modes among spatial neighboring CUs is analyzed to further eliminate unnecessary mode candidates. Finally, the Bayesian decision rule using online-learning is applied again to make a fast CU size decision. To ensure the accuracy of the Bayesian decision models, new scene change detection is designed to update the models. Results show that the proposed algorithm achieves 36.69% encoding time reduction with 1.08% Bjontegaard delta bitrate (BDBR) increment under all intra configuration. By integrating into the existing fast SCC approach, the proposed algorithm reduces 48.83% encoding time with a 1.78% increase in BDBR.
机译:屏幕内容编码(SCC)是高效视频编码的扩展,它采用新的编码模式来提高SCC的编码效率,但代价是增加了复杂性。本文提出了一种在线学习方法,用于SCC中的快速模式决策和编码单元(CU)大小决策。为了做出快速模式决策,首先将角点提取为屏幕内容中的独特功能,这是指导贝叶斯决策建模的重要预处理步骤。其次,CU中的不同颜色编号是屏幕内容中的另一个独特功能,可使用在线学习跳过不必要的模式来构建精确的模型。第三,分析空间相邻CU之间的模式的相关性,以进一步消除不必要的模式候选。最终,再次应用使用在线学习的贝叶斯决策规则来做出快速的CU大小决策。为了确保贝叶斯决策模型的准确性,设计了新的场景变化检测来更新模型。结果表明,在所有内部配置下,该算法以1.08%的Bjontegaard增量比特率(BDBR)增量实现了36.69%的编码时间减少。通过集成到现有的快速SCC方法中,该算法减少了48.83%的编码时间,而BDBR却增加了1.78%。

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