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Superpixel construction for hyperspectral unmixing

机译:用于超光谱解混的超像素构造

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Spectral unmixing aims to determine the component materials and their associated abundances from mixed pixels in a hyperspectral image. Instead of performing unmixing independently on each pixel, investigating spatial and spectral correlations among pixels can be beneficial to enhance the unmixing performance. However linking pixels across an entire image for such a purpose can be computationally cumbersome and physically unreasonable. In order to address this issue, we propose to construct superpixels for hyperspectral data unmixing. Using an SLIC-based (Simple Linear Iterative Clustering) superpixel constructing process, adjacent pixels are clustered into several blocks with similar spectral signatures. After this preprocessing, unmixing is then performed with a graph-based total variation regularization to benefit from the heterogeneity within each superpixel. Experimental results on synthetic data and real hyperspectral data illustrate advantages of the proposed scheme.
机译:光谱解混旨在根据高光谱图像中的混合像素确定成分材料及其关联的丰度。代替在每个像素上独立执行解混,研究像素之间的空间和光谱相关性可能对增强解混性能很有帮助。然而,为此目的在整个图像上链接像素可能在计算上很麻烦并且在物理上是不合理的。为了解决这个问题,我们建议构造用于超光谱数据分解的超像素。使用基于SLIC(简单线性迭代聚类)的超像素构建过程,相邻像素被聚类为具有相似光谱特征的几个块。在该预处理之后,然后使用基于图的总变化正则化进行解混以受益于每个超像素内的异质性。在合成数据和实际高光谱数据上的实验结果说明了该方案的优势。

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