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Spectral Clustering based on JS-divergence for Uncertain Data
Wang, Yingxu; Dong, Jiwen; Zhou, Jin; Wang, Lin; Han, Shiyuan; Zhang, Tong; Chen, C. L. Philip; IEEE
2017
Conference Name2017 IEEE INTERNATIONAL CONFERENCE ON SYSTEMS, MAN, AND CYBERNETICS (SMC)
Pages1972-1975
Conference DateOCT 05-08, 2017
Conference PlaceBanff, CANADA
Publication Place345 E 47TH ST, NEW YORK, NY 10017 USA
PublisherIEEE
Abstract

Spectral clustering is one of the most effective methods of data mining, in which the adjacency matrix is constructed by using the similarity matrix. In this paper, to extend spectral clustering method for uncertain data clustering, we propose a new spectral clustering method based on JS-divergence. In the proposed method, the JS-divergence is used to construct the adjacency matrix in the spectral clustering, which is more suitable to calculate the similarity between uncertain data objects as a symmetrical measurement compared to the KL-divergence.

KeywordUncertain Data Clustering Js-divergence Spectral Clustering Method
DOI10.1109/SMC.2017.8122907
URLView the original
Language英語English
WOS Research AreaComputer Science
WOS SubjectComputer Science, Artificial Intelligence ; Computer Science, Cybernetics
WOS IDWOS:000427598702002
The Source to ArticleWOS
Scopus ID2-s2.0-85044175605
Fulltext Access
Citation statistics
Document TypeConference paper
CollectionUniversity of Macau
Recommended Citation
GB/T 7714
Wang, Yingxu,Dong, Jiwen,Zhou, Jin,et al. Spectral Clustering based on JS-divergence for Uncertain Data[C], 345 E 47TH ST, NEW YORK, NY 10017 USA:IEEE, 2017, 1972-1975.
APA Wang, Yingxu., Dong, Jiwen., Zhou, Jin., Wang, Lin., Han, Shiyuan., Zhang, Tong., Chen, C. L. Philip., & IEEE (2017). Spectral Clustering based on JS-divergence for Uncertain Data. , 1972-1975.
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