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A discriminated similarity matrix construction based on sparse subspace clustering algorithm for hyperspectral imagery

机译:基于稀疏子空间聚类算法的高光谱图像鉴别相似矩阵构造

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The clustering of hyperspectral images is a challenging task because of the high dimensionality of the data. Sparse subspace clustering (SSC) algorithm is one of the popularly used clustering algorithm for high dimensionality data. However, SSC has not fully used the spectral and spatial information during similarity matrix construction based on single sparse representation coefficient for hyperspectral Imagery (HSI) clustering. In this paper, two novel similarity matrix construction methods named as Cosine-Euclidean similarity matrix (abbreviated as CE) and Cosine-Euclidean dynamic weighting similarity matrix (abbreviated as CEDW) are proposed for HSI clustering. They can combine the high spectral information and rich spatial information. Firstly, CE utilizes the cosine similarity of spectral information based on overall sparse representation vectors and classical Euclidean distance of spatial information to construct a novel similarity matrix. Secondly, inheriting CE merits, dynamic weighting adjustment method is introduced to CEDW for some external influence factors to the HSI information. Several experiments on HSI demonstrated that the proposed algorithms are effective for HSI clustering. (C) 2018 Published by Elsevier B.V.
机译:由于数据的高维度,高光谱图像的聚类是一项具有挑战性的任务。稀疏子空间聚类(SSC)算法是流行的高维数据聚类算法之一。但是,SSC尚未在基于单个稀疏表示系数的相似矩阵构造过程中充分利用光谱和空间信息进行高光谱图像(HSI)聚类。本文提出了两种新颖的相似性矩阵构造方法,分别称为余弦-欧式相似度矩阵(简称为CE)和余弦-欧式动态加权相似度矩阵(简称为CEDW)用于HSI聚类。它们可以结合高光谱信息和丰富的空间信息。首先,CE利用基于整体稀疏表示向量和空间信息的经典欧几里得距离的频谱信息的余弦相似度来构造一个新颖的相似度矩阵。其次,在继承CE优点的基础上,针对恒指信息的一些外部影响因素,将动态加权调整方法引入到CEDW中。在HSI上的一些实验表明,所提出的算法对于HSI聚类是有效的。 (C)2018由Elsevier B.V.发布

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