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Dictionary based Hyperspectral Image Reconstruction Captured with CS-MUSI

机译:用CS-Musi捕获的基于词典的高光谱图像重建

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The Compressive Sensing Miniature Ultra-Spectral Imaging (CS-MUSI) camera uses a spectral modulator and a grayscale sensor in order to capture an encoded compressed spectral signal. Using the compressive sensing (CS) theory hyperspectral (HS) cubes with hundreds of spectral bands can be reconstructed from an order of magnitude fewer samples. In this work, we show that by using spectral dictionary, as the sparsifying operator, for reconstruction of CS HS images acquired with our CS-MUSI camera, we can both increase the reconstruction quality and reduce the number of measurements CS theory requires as well.
机译:压缩传感微型超光谱成像(CS-Musi)相机使用光谱调制器和灰度传感器,以捕获编码的压缩光谱信号。使用压缩感测(CS)理论,具有数百个光谱带的高光谱(HS)立方体可以从较少的样本的阶数重建。在这项工作中,我们表明,通过使用光谱字典作为稀疏操作员,对于使用我们的CS-Musi相机获取的CS HS图像的重建,我们都可以提高重建质量并降低测量值CS理论的数量。

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