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Multispectral image compression by cluster-adaptive subspace representation

机译:Cluster-Adaptive子空间表示的多光谱图像压缩

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Multispectral imaging has attracted much interest in color science area, for its ability in providing much more spectral information than 3-channel color images. Due to the huge data volume, it is necessary to compress multispectral images for efficient transmission. This paper proposes a framework for spectral compression of multispectral image by using cluster-adaptive subspaces representation. In the framework, multispectral image is initially segmented by hierarchical analysis of the transform coefficients in the global subspace, and then ambiguous pixels are identified and classified into proper clusters based on linear discriminant analysis. The dimensionality of each adaptive subspace is determined by specified reconstruction error level, followed by further cluster splitting if necessary. The efficiency of the proposed method is verified by experiments on real multispectral images.
机译:多光谱成像引起了在颜色科学领域的兴趣很大,以实现比3通道彩色图像更多的光谱信息。由于数据量庞大,必须压缩多光谱图像以进行高效传输。本文提出了通过使用聚类自适应子空间表示来提出多光谱图像的光谱压缩框架。在框架中,通过全局子空间中的变换系数的分级分析最初分割多光谱图像,然后基于线性判别分析将模糊像素识别并分类为适当的簇。每个自适应子空间的维度由指定的重建错误级别确定,然后在必要时进行进一步的群集拆分。通过真实多光谱图像的实验验证所提出的方法的效率。

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