Independent component analysis-based band selection techniques for hyperspectral images analysis

被引:8
作者
Zaatour, Rania [1 ]
Bouzidi, Sonia [1 ]
Zagrouba, Ezzeddine [1 ]
机构
[1] Univ Tunis El Manar, Res Team SIIVA, Lab LIMTIC, Inst Super Informat, Ariana, Tunisia
来源
JOURNAL OF APPLIED REMOTE SENSING | 2017年 / 11卷
关键词
hyperspectral image analysis; extended multiattribute profile; dimensionality reduction; feature selection; independent component analysis; initialization-driven independent component analysis; MORPHOLOGICAL ATTRIBUTE PROFILES; CLASSIFICATION; INFORMATION;
D O I
10.1117/1.JRS.11.026006
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Extended multiattribute profiles (EMAPs) are morphological profiles built on the extracted features of a hyperspectral image. These profiles proved, when used in a hyperspectral image classification task, their ability to combine the spectral and spatial information offered by this type of data. We propose building EMAPs on the features selected from a hyperspectral image. To do so, three band selection techniques are proposed. The first one is a modified version of the existent independent component analysis (ICA)-based band selection. The other two are based on the initialization-driven ICA. To test the effectiveness of the aforementioned feature selection methods, we used them to build the EMAPs of hyperspectral images; then, the generated profiles served as the input of two hyperspectral image analysis tasks: a hyperspectral image classification task-based on the sparse representation of EMAPs and an EMAP-based change detection technique that we are proposing in this paper. (C) 2017 Society of Photo-Optical Instrumentation Engineers (SPIE)
引用
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页数:22
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