Kernel Entropy Component Analysis for Remote Sensing Image Clustering

被引:38
作者
Gomez-Chova, Luis [1 ]
Jenssen, Robert [2 ]
Camps-Valls, Gustavo [1 ]
机构
[1] Univ Valencia, Image Proc Lab, E-46980 Valencia, Spain
[2] Univ Tromso, Dept Phys & Technol, N-9037 Tromso, Norway
关键词
Feature extraction; k-means; kernel method; Parzen windowing; Renyi entropy; spectral clustering; ALGORITHM;
D O I
10.1109/LGRS.2011.2167212
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 proposes the kernel entropy component analysis for clustering remote sensing data. The method generates nonlinear features that reveal structure related to the Renyi entropy of the input space data set. Unlike other kernel feature-extraction methods, the top eigenvalues and eigenvectors of the kernel matrix are not necessarily chosen. Data are interestingly mapped with a distinct angular structure, which is exploited to derive a new angle-based spectral clustering algorithm based on the mapped data. An out-of-sample extension of the method is also presented to deal with test data. We focus on cloud screening from Medium Resolution Imaging Spectrometer images. Several images are considered to account for the high variability of the problem. Good results obtained show the suitability of the proposal.
引用
收藏
页码:312 / 316
页数:5
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