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Multi-spectral demosaicing: A joint-sparse elastic-net formulation

机译:多光谱脱染型:联合稀疏弹性网配方

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This work proposes techniques for demosaicing multi-spectral images obtained from a single sensor architecture. This is a new problem. Compressed Sensing (CS) based formulations can recover images by exploiting the sparsity of the images in the wavelet domain. In this work, we improve upon existing techniques by accounting for the hierarchical (tree-structured) correlation that exists among the wavelet coefficients of piecewise smooth signals. For a single image, this turns out to be an elastic -net problem. Since our problem involves multi-spectral images, the proposed formulation leads to a joint-sparse elastic-net optimization problem which is solved via Split Bregman type algorithm. Our proposed improvement yields considerably better recovery results compared to existing techniques.
机译:这项工作提出了用于从单个传感器架构获得的用于去解秒的多光谱图像的技术。这是一个新问题。基于压缩的感测(CS)的配方可以通过利用小波域中的图像的稀疏性来恢复图像。在这项工作中,我们通过考虑分段平滑信号的小波系数之间存在的分层(树结构)相关性来改进现有技术。对于单个图像,这结果是弹性-NET问题。由于我们的问题涉及多频谱图像,所提出的配方导致接合稀疏弹性净优化问题,该净优化问题通过分割Bregman型算法解决。与现有技术相比,我们所提出的改进会产生更好的恢复结果。

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