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Linear transform for simultaneous diagonalization of covariance and perceptual metric matrix in image coding

机译:用于协方差和感知度量矩阵同时对角化的线性变换

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Two types of redundancies are contained in images: statistical redundancy and psychovisual redundancy. Image representation techniques for image coding should remove both redundancies in order to obtain good results. In order to establish an appropriate representation, the standard approach to transform coding only considers the statistical redundancy, whereas the psychovisual factors are introduced after the selection of the representation as a simple scalar weighting in the transform domain. In this work, we take into account the psychovisual factors in the definition of the representation together with the statistical factors, by means of the perceptual metric and the covariance matrix, respectively. In general the ellipsoids described by these matrices are not aligned. Therefore, the optimal basis for image representation should simultaneously diagonalize both matrices. This approach to the basis selection problem has several advantages in the particular application of image coding. As the transform domain is Euclidean (by definition), the quantizer design is highly simplified and at the same time, the use of scalar quantizers is truly justified. The proposed representation is compared to covariance-based representations such as the DCT and the KLT or PCA using standard JPEG-like and Max-Lloyd quantizers. (C) 2003 Pattern Recognition Society. Published by Elsevier Science Ltd. All rights reserved. [References: 35]
机译:图像中包含两种类型的冗余:统计冗余和心理视觉冗余。用于图像编码的图像表示技术应消除这两个冗余,以获得良好的结果。为了建立适当的表示,转换编码的标准方法仅考虑了统计冗余,而在选择表示之后将心理视觉因素作为转换域中的简单标量加权。在这项工作中,我们分别通过感知量度和协方差矩阵将表征中的心理视觉因素与统计因素一起考虑在内。通常,这些矩阵描述的椭球是不对齐的。因此,图像表示的最佳基础应同时对角化两个矩阵。这种针对基础选择问题的方法在图像编码的特定应用中具有多个优点。由于变换域是欧几里德(按定义),因此量化器设计得到了极大简化,同时,使用标量量化器确实是合理的。使用标准的类似JPEG和Max-Lloyd量化器,将建议的表示与基于协方差的表示(例如DCT和KLT或PCA)进行比较。 (C)2003模式识别学会。由Elsevier Science Ltd.出版。保留所有权利。 [参考:35]

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