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A simple scheme for unmixing hyperspectral data based on the geometry of the N-dimensional simplex

机译:一种简单的方案,用于基于N维简单的几何形状的超光线数据

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In this paper, we study the problem of decomposing spectra in hyperspectral data into the sum of pure spectra, or endmembers. We propose to jointly extract the endmembers and estimate the corresponding fractions, or abundances. For this purpose, we show that these abundances can be easily computed using volume of simplices, from the same information used in the classical N-Findr algorithm. This results into a simple scheme for unmixing hyperspectral data, with low computational complexity. Experimental results show the efficiency of the proposed method.
机译:在本文中,我们研究了高光谱数据中分解谱的问题,进入纯光谱或终点。我们建议共同提取终点,并估计相应的分数,或丰富。为此目的,我们表明这些丰度可以使用型号的卷从经典N-FindR算法中使用的相同信息来容易地计算这些丰富。这导致了用于解密超光谱数据的简单方案,具有低计算复杂性。实验结果表明了该方法的效率。

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