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An Algorithm of Remotely Sensed Hyperspectral Image Fusion Based on Spectral Unmixing and Feature Reconstruction

机译:一种基于光谱解密和特征重建的远程感测的远程光谱图像融合算法

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In order to get high spatial resolution hyperspectral data, many studies have examined methods to combine spectral information contained in hyperspectral image with spatial information contained in multispectral/panchromatic image. This paper developed a new hyperspectral image fusion method base on the non-negative matrix factorization (NMF) theory. Data sets obtained by the Airborne Visible Infrared Imaging Spectrometer (AVIRIS) was used to evaluate the performance of the method. Experimental results show that the proposed algorithm can provide a good way to solve the problem of high spatial resolution hyperspectral data shortage.
机译:为了获得高空间分辨率的高光谱数据,许多研究已经检查了组合Hyperspectral图像中包含的光谱信息的方法,其中包含多光谱/平面图像中包含的空间信息。本文在非负矩阵分解(NMF)理论上开发了一种新的高光谱图像融合方法基础。通过空气传播的可见红外成像光谱仪(Aviris)获得的数据集用于评估该方法的性能。实验结果表明,该算法可以提供解决高空间分辨率高光谱数据短缺问题的好方法。

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