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Unsupervised Change Detection With Kernels

delete2012-11-01
delete76
PRE
AI
M
Michele Volpi *
D
Devis Tuia
C
Camps-Valls, Gustavo
M
Mikhaïl Kanevski
DOI:10.1109/LGRS.2012.2189092delete
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摘要

摘要

En 中文
In this letter, an unsupervised kernel-based approach to change detection is introduced. Nonlinear clustering is utilized to partition in two a selected subset of pixels representing both changed and unchanged areas. Once the optimal clustering is obtained, the learned representatives of each group are exploited to assign all the pixels composing the multitemporal scenes to the two classes of interest. Two approaches based on different assumptions of the difference image are proposed. The first accounts for the difference image in the original space, while the second defines a mapping describing the difference image directly in feature spaces. To optimize the parameters of the kernels, a novel unsupervised cost function is proposed. An evidence of the correctness, stability, and superiority of the proposed solution is provided through the analysis of two challenging change-detection problems.
Keyword:
Composite kernels
kernel k-means
kernel parameters
unsupervised change detection

期刊

IEEE Geoscience and Remote Sensing Magazine 封面图
IEEE Geoscience and Remote Sensing Magazine
IF:
16.4
论文数:
1.0W
被引数:
5.1K

机构

E
Ecole Polytechnique Federale de Lausanne
学者数:
1.7W
论文数: 1.3W
被引数: 25
U
University of Lausanne
学者数:
2.5W
论文数: 2.0W
被引数: 3.0W
S
swiss federal institutes of technology domain
学者数:
9.0W
论文数: 8.0W
被引数: 163
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