DocumentCode :
8688
Title :
Spatial-Spectral Kernel Sparse Representation for Hyperspectral Image Classification
Author :
Jianjun Liu ; Zebin Wu ; Zhihui Wei ; Liang Xiao ; Le Sun
Author_Institution :
Sch. of Comput. Sci. & Eng., Nanjing Univ. of Sci. & Technol., Nanjing, China
Volume :
6
Issue :
6
fYear :
2013
fDate :
Dec. 2013
Firstpage :
2462
Lastpage :
2471
Abstract :
Kernel sparse representation classification (KSRC), a nonlinear extension of sparse representation classification, shows its good performance for hyperspectral image classification. However, KSRC only considers the spectra of unordered pixels, without incorporating information on the spatially adjacent data. This paper proposes a neighboring filtering kernel to spatial-spectral kernel sparse representation for enhanced classification of hyperspectral images. The novelty of this work consists in: 1) presenting a framework of spatial-spectral KSRC; and 2) measuring the spatial similarity by means of neighborhood filtering in the kernel feature space. Experiments on several hyperspectral images demonstrate the effectiveness of the presented method, and the proposed neighboring filtering kernel outperforms the existing spatial-spectral kernels. In addition, the proposed spatial-spectral KSRC opens a wide field for future developments in which filtering methods can be easily incorporated.
Keywords :
geophysical image processing; hyperspectral imaging; image classification; image representation; spatial filters; hyperspectral image classification; kernel feature space; neighboring filtering kernel; spatial similarity; spatial-spectral kernel sparse representation; Hyperspectral imaging; Kernel; Noise measurement; Support vector machines; Classification; hyperspectral image; kernel sparse representation; spatial-spectral kernel;
fLanguage :
English
Journal_Title :
Selected Topics in Applied Earth Observations and Remote Sensing, IEEE Journal of
Publisher :
ieee
ISSN :
1939-1404
Type :
jour
DOI :
10.1109/JSTARS.2013.2252150
Filename :
6494340
Link To Document :
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