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Truncated Nuclear Norm Based Hyperspectral Unmixing Method

机译:基于截断核范数的高光谱分解方法

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In this study, we propose a semi-supervised hyperspectral unmixing method to obtain the abundances of the spectral signatures in a hyperspectral image. In the proposed model, low-rank representation (LRR) and a sparsity inducing norm is simultaneously hold within a sliding window of fixed size to capture the spatial structure within the adjacent pixels. Truncated nuclear norm (TNN), which is defined as the nuclear norm subtracted by the sum of the largest few singular values, is used to estimate the rank of abundance matrix within the window. We conduct several experiments on synthetic and real hyperspectral data sets to validate the effectiveness of the proposed method in obtaining the abundance maps.
机译:在这项研究中,我们提出了一种半监督的高光谱解混方法,以获取高光谱图像中光谱特征的丰度。在提出的模型中,低秩表示(LRR)和稀疏诱导范式同时保持在固定大小的滑动窗口内,以捕获相邻像素内的空间结构。截断核范数(TNN)定义为用最大的几个奇异值之和减去的核范数,用于估计窗口内的丰度矩阵的等级。我们对合成和真实的高光谱数据集进行了几次实验,以验证所提出方法在获取丰度图方面的有效性。

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