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Jointly Optimized Spatial Prediction and Block Transform for Video and Image Coding

机译:联合优化的视频和图像编码空间预测和块变换

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摘要

This paper proposes a novel approach to jointly optimize spatial prediction and the choice of the subsequent transform in video and image compression. Under the assumption of a separable first-order Gauss-Markov model for the image signal, it is shown that the optimal Karhunen-Loeve Transform, given available partial boundary information, is well approximated by a close relative of the discrete sine transform (DST), with basis vectors that tend to vanish at the known boundary and maximize energy at the unknown boundary. The overall intraframe coding scheme thus switches between this variant of the DST named asymmetric DST (ADST), and traditional discrete cosine transform (DCT), depending on prediction direction and boundary information. The ADST is first compared with DCT in terms of coding gain under ideal model conditions and is demonstrated to provide significantly improved compression efficiency. The proposed adaptive prediction and transform scheme is then implemented within the H.264/AVC intra-mode framework and is experimentally shown to significantly outperform the standard intra coding mode. As an added benefit, it achieves substantial reduction in blocking artifacts due to the fact that the transform now adapts to the statistics of block edges. An integer version of this ADST is also proposed.
机译:本文提出了一种新颖的方法来联合优化空间预测以及视频和图像压缩中后续变换的选择。在图像信号具有可分离的一阶高斯-马尔可夫模型的假设下,表明在给定可用局部边界信息的情况下,最佳Karhunen-Loeve变换可以通过离散正弦变换(DST)的近邻很好地近似,其基向量趋于在已知边界处消失并在未知边界处使能量最大化。因此,根据预测方向和边界信息,整个帧内编码方案会在称为非对称DST(ADST)的DST的此变体与传统离散余弦变换(DCT)之间进行切换。首先,在理想模型条件下,ADST与DCT在编码增益方面进行了比较,并被证明可以显着提高压缩效率。所提出的自适应预测和变换方案随后在H.264 / AVC帧内模式框架内实现,并通过实验证明其性能明显优于标准帧内编码模式。另外一个好处是,由于变换现在可以适应块边缘的统计信息,因此可以大大减少块效应。还提出了此ADST的整数形式。

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