A fast two-stage classification method for high-dimensional remote sensing data

被引:42
作者
Tu, TN [1 ]
Chen, CH
Wu, JL
Chang, CI
机构
[1] Chung Chen Inst Technol, Dept Elect Engn, Tao Yuan 33509, Taiwan
[2] Natl Cheng Kung Univ, Dept Elect Engn, Tainan 70101, Taiwan
[3] Univ Maryland Baltimore Cty, Dept Comp Sci & Elect Engn, Remote Sensing Signal & Image Proc Lab, Baltimore, MD 21228 USA
来源
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING | 1998年 / 36卷 / 01期
关键词
Band selection (BS); canonical analysis (CA); principal components analysis (PCA); recursive ML classifier (MLC); Winograd's identity;
D O I
10.1109/36.655328
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
Classification for high-dimensional remotely sensed data generally requires a large set of data samples and enormous processing time, particularly for hyperspectral image data, Hat this paper, we present a fast two-stage classification method composed of a band selection (BS) algorithm with feature extraction/selection (FSE) followed by a recursive maximum likelihood classifier (MLC). The first stage is to develop a BS algorithm coupled with FSE for data dimensionality reduction. The second siege is to design a fast recursive MLC (RMLC) so as to achieve computational efficiency, The experimental results shelf that the proposed recursive MLC, in conjunction with BS and FSE, reduces computing time significantly by a factor ranging from 30 to 145, as compared to the conventional MLC.
引用
收藏
页码:182 / 191
页数:10
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