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Bijection mapping for compression/denoising of multi-frame images

机译:Bijection映射用于多帧图像的压缩/去噪

摘要

A new approach to multispectral image compression where the intra- and cross-band correlations are jointly exploited in a surprisingly simple yet very effective manner. The key component of the algorithm is a bijection mapping of the original multispectral image into a virtual 2 dimensional scalar image. By optimally mapping the multispectral image set into a single 2 dimensional array and by subsequently applying a scalar image coding algorithm, the spatial correlation and the spectral correlation of the multispectral data set are jointly exploited. Based on the statistical characteristics of the multispectral data, the bijection mapping can be optimized to minimize the distortion introduced by the compression algorithm. The optimization reduces to the maximization of a function of the second-order statistics of the multispectral data. At high compression rates, the new algorithm outperforms traditional compression algorithms whenever the cross-band correlation is high and it yields comparable performance at low compression rates.
机译:一种新的多光谱图像压缩方法,其中以令人惊讶的简单但非常有效的方式联合利用了带内和跨带相关性。该算法的关键组成部分是原始多光谱图像到虚拟二维标量图像的双射映射。通过将多光谱图像集最佳地映射到一个二维数组中,然后通过应用标量图像编码算法,可以共同利用多光谱数据集的空间相关性和光谱相关性。基于多光谱数据的统计特性,可以优化双射映射以最小化压缩算法引入的失真。该优化减小到多光谱数据的二阶统计量的函数的最大化。在高压缩率下,只要跨带相关性很高,新算法就会优于传统压缩算法,并且在低压缩率下可获得可比的性能。

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