Categorizing Overlapping Regions in Clustering Analysis Using Three-Way Decisions

Clustering is a common technique for data analysis, has been widely used in many practical area. In many real applications such as social network analysis, wireless sensor networks, document clustering, and so on, there exist overlaps between different clusters due to various reasons. In this paper,...

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Vydáno v:2014 IEEE/WIC/ACM International Joint Conferences on Web Intelligence (WI) and Intelligent Agent Technologies (IAT) Ročník 2; s. 350 - 357
Hlavní autoři: Hong Yu, Peng Jiao, Guoyin Wang, Yiyu Yaoy
Médium: Konferenční příspěvek
Jazyk:angličtina
Vydáno: IEEE 01.08.2014
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Abstract Clustering is a common technique for data analysis, has been widely used in many practical area. In many real applications such as social network analysis, wireless sensor networks, document clustering, and so on, there exist overlaps between different clusters due to various reasons. In this paper, we propose to use the three-way decisions approach to address categorizing overlapping regions. In contrast to existing soft clustering methods that just point out the objects whether in overlapping regions, the three-way decisions method provides a greater refinement of the categorization to system operators for further analysis, which is believed to show clearly the objects have different impacts to construct clusters. Besides, we provide a new relation-graph based clustering algorithm to obtain different overlapping region types. The results of comparison experiments are better and more reasonable to overlapping clustering.
AbstractList Clustering is a common technique for data analysis, has been widely used in many practical area. In many real applications such as social network analysis, wireless sensor networks, document clustering, and so on, there exist overlaps between different clusters due to various reasons. In this paper, we propose to use the three-way decisions approach to address categorizing overlapping regions. In contrast to existing soft clustering methods that just point out the objects whether in overlapping regions, the three-way decisions method provides a greater refinement of the categorization to system operators for further analysis, which is believed to show clearly the objects have different impacts to construct clusters. Besides, we provide a new relation-graph based clustering algorithm to obtain different overlapping region types. The results of comparison experiments are better and more reasonable to overlapping clustering.
Author Guoyin Wang
Hong Yu
Yiyu Yaoy
Peng Jiao
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  surname: Guoyin Wang
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  surname: Yiyu Yaoy
  fullname: Yiyu Yaoy
  email: yyao@cs.uregina.ca
  organization: Dept. of Comput. Sci., Univ. of Regina, Regina, SK, Canada
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Snippet Clustering is a common technique for data analysis, has been widely used in many practical area. In many real applications such as social network analysis,...
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Title Categorizing Overlapping Regions in Clustering Analysis Using Three-Way Decisions
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