Hyperspectral Image Classification Using Kernel Sparse Representation and Semilocal Spatial Graph Regularization

被引:29
|
作者
Liu, Jianjun [1 ]
Wu, Zebin [1 ]
Sun, Le [1 ]
Wei, Zhihui [1 ]
Xiao, Liang [1 ]
机构
[1] Nanjing Univ Sci & Technol, Sch Comp Sci & Engn, Nanjing 210094, Jiangsu, Peoples R China
基金
高等学校博士学科点专项科研基金; 中国国家自然科学基金;
关键词
Graph regularization; hyperspectral image classification; kernel sparse representation (KSR); sparsity concentration index (SCI); SVM;
D O I
10.1109/LGRS.2013.2292831
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
This letter presents a postprocessing algorithm for a kernel sparse representation (KSR)-based hyperspectral image classifier, which is based on the integration of spatial and spectral information. A pixelwise KSR is first used to find the sparse coefficient vectors of the hyperspectral image. Then, a sparsity concentration index (SCI) rule-guided semilocal spatial graph regularization (SSG), called SSG+SCI, is proposed to determine refined sparse coefficient vectors that promote spatial continuity within each class. Finally, these refined coefficient vectors are used to obtain the final classification map. Compared with previous approaches based on similar spatial-spectral postprocessing strategies, SSG+SCI clearly outperforms their results in terms of accuracy and the number of training samples, as it is demonstrated with two real hyperspectral images.
引用
收藏
页码:1320 / 1324
页数:5
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