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Rate-Distortion Analysis and Bit Allocation Strategy for Motion Estimation at the Decoder using Maximum Likelihood Technique in Distributed Video Coding

机译:使用最大似然技术在分布式视频编码中的解码器在解码器中运动估计的速率 - 失真分析和比特分配策略

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Numerous approaches for distributed video coding have been recently proposed. One of main motivations for these techniques is the possibility of achieving complexity tradeoffs between the encoder and the decoder that may not be feasible in the context of conventional video coding. In our previous work, a Maximum Likelihood (ML) method for motion estimation at the decoder was proposed. It was shown that the ML method, designed based on the PRISM architecture, induces no additional rate cost, and is able to work with existing methods, e.g. those based on hash functions or CRC, to improve overall decoding PSNR. In this work, we present a rate-distortion analysis of our ML method. This analysis, given a correlation model for the video data, allows us to improve bit allocation at the encoder, i.e., the decision on the number of cosets to be used to represent various types of video information. We also signal "End of Block" (EOB) in coding to further exploit the energy compaction. Our experiments demonstrate significant improvements PSNR up to 1.5dB from RD optimized bit allocation.
机译:最近提出了许多用于分布式视频编码的方法。这些技术的主要动机之一是在传统视频编码的上下文中实现可能不可行的编码器和解码器之间的复杂性权衡的可能性。在我们之前的工作中,提出了解码器在解码器的最大可能性(ML)方法。结果表明,基于棱镜架构设计的ML方法不诱导额外的速率成本,并且能够与现有方法一起使用,例如,那些基于哈希函数或CRC的人,以改善整体解码PSNR。在这项工作中,我们提出了我们ML方法的速率失真分析。此分析给定视频数据的相关模型,允许我们改善编码器的比特分配,即,用于用于代表各种类型的视频信息的陪定的决定。我们还在编码中发出“块块”(Eob)以进一步利用能量压实。我们的实验表明,从RD优化比特分配中显示出高达1.5dB的显着改进。

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