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An approach for fully constrained linear spectral unmixing based on distance geometry

机译:一种基于距离几何的完全约束线性谱解密的方法

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This paper proposed a new approach to estimate the abundance of each endmember at each pixel using distance geometry concepts and distance geometry constraints. It improves current hyperspectral unmixing algorithms in several aspects. Firstly, denoting the distance relationship with Cayley-Menger matrix makes it easy to calculate the barycentric coordinates of observation pixels, and the computation is independent of number of bands. Secondly, by the distance geometry constraint, the geometric structure of dataset is considered to obtain the optimal result with least geometric deformation. The synthetic and real data experimental results demonstrate that this algorithm is a fast and accurate algorithm for the hyperspectral unmixing.
机译:本文提出了一种新方法来估计使用距离几何概念和距离几何约束的每个像素在每个像素处的每一个末端的丰度。它在若干方面改善了当前的超光谱解密算法。首先,表示与Cayley-Menger矩阵的距离关系使得易于计算观察像素的重心坐标,并且计算与频带的数量无关。其次,通过距离几何约束,考虑数据集的几何结构以获得最低几何变形的最佳结果。合成和真实数据实验结果表明,该算法是一种快速准确的高光谱解密算法。

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