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Asymptotic Closed-Loop Design Of Transform Modes For The Inter-Prediction Residual In Video Coding

机译:视频编码中帧间预测残差变换模式的渐近闭环设计

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摘要

Transform coding is a key component of video coders, tasked with spatial decorrelation of the prediction residual. There is growing interest in adapting the transform to local statistics of the inter-prediction residual, going beyond a few standard trigonometric transforms. However, the joint design of multiple transform modes is highly challenging due to critical stability problems inherent to feedback through the codec’s prediction loop, wherein training updates inadvertently impact the signal statistics the transform ultimately operates on, and are often counter-productive (and sometimes catastrophic). It is the premise of this work that a truly effective switched transform design procedure must account for and circumvent this shortcoming. We introduce a data-driven approach to design optimal transform modes for adaptive switching by the encoder. Most importantly, to overcome the critical stability issues, the approach is derived within an asymptotic closed loop (ACL) design framework, wherein each iteration operates in an effective open loop, and is thus inherently stable, but with a subterfuge that ensures that, asymptotically, the design approaches closed loop operation, as required for the ultimate coder operation. Experimental results demonstrate the efficacy of the proposed optimization paradigm which yields significant performance gains over the state-of-the-art.
机译:变换编码是视频编码器的关键组件,任务具有预测残差的空间去相关性。越来越感兴趣地将变换调整到局部预测残余的局部统计数据,超出了几个标准三角变换。然而,多变换模式的关节设计是由于通过编解码器的预测循环的反馈所固有的关键稳定性问题,其中训练更新无意中影响了转换最终操作的信号统计,并且通常是反效率的(并且有时灾难性)。这项工作的前提是,真正有效的交换变换设计程序必须占据并规避此缺点。我们介绍了一种数据驱动方法来设计编码器自适应切换的最佳变换模式。最重要的是,为了克服关键稳定性问题,该方法是在渐近闭环(ACL)设计框架内的方法,其中每个迭代在有效的开环中运行,因此固有稳定,但是具有渐近的次数,可以确保渐近的稳定性,设计接近闭环操作,根据最终编码器操作。实验结果表明,所提出的优化范例的功效,从而产生了最先进的性能。

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