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Adaptive Distributed Video Coding with Correlation Estimation using Expectation Propagation

机译:自适应分布式视频编码使用期望传播进行相关估计

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摘要

Distributed video coding (DVC) is rapidly increasing in popularity by the way of shifting the complexity from encoder to decoder, whereas no compression performance degrades, at least in theory. In contrast with conventional video codecs, the inter-frame correlation in DVC is explored at decoder based on the received syndromes of Wyner-Ziv (WZ) frame and side information (SI) frame generated from other frames available only at decoder. However, the ultimate decoding performances of DVC are based on the assumption that the perfect knowledge of correlation statistic between WZ and SI frames should be available at decoder. Therefore, the ability of obtaining a good statistical correlation estimate is becoming increasingly important in practical DVC implementations. Generally, the existing correlation estimation methods in DVC can be classified into two main types: pre-estimation where estimation starts before decoding and on-the-fly (OTF) estimation where estimation can be refined iteratively during decoding. As potential changes between frames might be unpredictable or dynamical, OTF estimation methods usually outperforms pre-estimation techniques with the cost of increased decoding complexity (e.g., sampling methods). In this paper, we propose a low complexity adaptive DVC scheme using expectation propagation (EP), where correlation estimation is performed OTF as it is carried out jointly with decoding of the factor graph-based DVC code. Among different approximate inference methods, EP generally offers better tradeoff between accuracy and complexity. Experimental results show that our proposed scheme outperforms the benchmark state-of-the-art DISCOVER codec and other cases without correlation tracking, and achieves comparable decoding performance but with significantly low complexity comparing with sampling method.
机译:通过将复杂度从编码器转移到解码器,分布式视频编码(DVC)的流行度迅速提高,而至少在理论上没有压缩性能下降。与常规视频编解码器相比,基于接收到的Wyner-Ziv(WZ)帧校正子和从仅在解码器处可用的其他帧生成的边信息(SI)帧,在解码器上探索DVC中的帧间相关性。但是,DVC的最终解码性能是基于这样的假设,即WZ和SI帧之间的相关统计的完美知识应该在解码器处可用。因此,在实际的DVC实现中,获得良好的统计相关估计的能力变得越来越重要。通常,DVC中现有的相关估计方法可以分为两种主要类型:预估计(在解码之前开始进行估计)和动态(OTF)估计,在估计过程中可以在解码过程中迭代地完善估计。由于帧之间的潜在变化可能是不可预测的或动态的,因此OTF估计方法通常会比预估计技术好,但其解码复杂性会增加(例如采样方法)。在本文中,我们提出了一种使用期望传播(EP)的低复杂度自适应DVC方案,其中相关估计是与基于因子图的DVC代码的解码一起进行的,因此会进行OTF。在不同的近似推理方法中,EP通常会在准确性和复杂性之间提供更好的权衡。实验结果表明,我们提出的方案优于基准的最新DISCOVER编解码器和没有相关跟踪的其他情况,并且可以实现可比的解码性能,但与采样方法相比具有较低的复杂度。

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