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Kolmogorov superposition theorem for image compression

机译:Kolmogorov叠加定理用于图像压缩

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The authors present a novel approach for image compression based on an unconventional representation of images. The proposed approach is different from most of the existing techniques in the literature because the compression is not directly performed on the image pixels, but is rather applied to an equivalent monovariate representation of the wavelettransformed image. More precisely, the authors have considered an adaptation of Kolmogorov superposition theorem proposed by Igelnik and known as the Kolmogorov spline network (KSN), in which the image is approximated by sums and compositions of specific monovariate functions. Using this representation, the authors trade the local connectivity and the traditional line-per-line scanning, in exchange of a more adaptable and univariate representation of images, which allows to tackle the compression tasks in a fundamentally different representation. The contributions lie in the several strategies presented to adapt the KSN algorithm, including the monovariate construction, various simplification strategies, the proposal of a more suitable representation of the original image using wavelets and the integration of this scheme as an additional layer in the JPEG 2000 compression engine, illustrated for numerous images at different bit rates.
机译:作者提出了一种基于图像非常规表示的图像压缩新方法。所提出的方法与文献中的大多数现有技术不同,因为压缩不是直接在图像像素上执行,而是应用于小波变换图像的等效单变量表示。更准确地说,作者考虑了由Igelnik提出的Kolmogorov叠加定理的一种改编,称为Kolmogorov样条网络(KSN),其中图像由特定单变量函数的和和组成近似。使用这种表示法,作者可以交换局部连通性和传统的逐行扫描,以交换图像的更自适应和单变量表示法,从而可以从根本上不同的表示法处理压缩任务。贡献在于为适应KSN算法而提出的几种策略,包括单变量构造,各种简化策略,使用小波提出的更合适的原始图像表示方案以及将该方案集成为JPEG 2000中的附加层的建议。压缩引擎,针对不同比特率的大量图像进行了说明。

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