JOURNAL ARTICLE

Use of customizing kernel sparse representation for hyperspectral image classification

Bin QiChunhui ZhaoGuisheng Yin

Year: 2015 Journal:   Applied Optics Vol: 54 (4)Pages: 707-707   Publisher: Optica Publishing Group

Abstract

Sparse representation-based classification (SRC) has attracted increasing attention in remote-sensed hyperspectral communities for its competitive performance with available classification algorithms. Kernel sparse representation-based classification (KSRC) is a nonlinear extension of SRC, which makes pixels from different classes linearly separable. However, KSRC only considers projecting data from original space into feature space with a predefined parameter, without integrating a priori domain knowledge, such as the contribution from different spectral features. In this study, customizing kernel sparse representation-based classification (CKSRC) is proposed by incorporating kth nearest neighbor density as a weighting scheme in traditional kernels. Analyses were conducted on two publicly available data sets. In comparison with other classification algorithms, the proposed CKSRC further increases the overall classification accuracy and presents robust classification results with different selections of training samples.

Keywords:
Hyperspectral imaging Pattern recognition (psychology) Sparse approximation Kernel (algebra) Computer science Artificial intelligence Weighting Contextual image classification Feature vector Pixel Kernel method Representation (politics) Support vector machine Mathematics Image (mathematics)

Metrics

3
Cited By
0.79
FWCI (Field Weighted Citation Impact)
34
Refs
0.78
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Remote-Sensing Image Classification
Physical Sciences →  Engineering →  Media Technology
Sparse and Compressive Sensing Techniques
Physical Sciences →  Engineering →  Computational Mechanics
Remote Sensing and Land Use
Physical Sciences →  Earth and Planetary Sciences →  Atmospheric Science

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