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Revealing community structures by ensemble clustering using group diffusion

Authors
Ivannikova, ElenaPark, HyunwooHamalainen, TimoLee, Ki chun
Issue Date
Jul-2018
Publisher
Elsevier BV
Keywords
Clustering; Diffusion; Markov chain; Social network; Community structure
Citation
Information Fusion, v.42, pp 24 - 36
Pages
13
Indexed
SCIE
SCOPUS
Journal Title
Information Fusion
Volume
42
Start Page
24
End Page
36
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/149702
DOI
10.1016/j.inffus.2017.09.013
ISSN
1566-2535
1872-6305
Abstract
We propose an ensemble clustering approach using group diffusion to reveal community structures in data. We represent data points as a directed graph and assume each data point belong to single cluster membership instead of multiple memberships. The method is based on the concept of ensemble group diffusion with a parameter to represent diffusion depth in clustering. The ability to modulate the diffusion-depth parameter by varying it within a certain interval allows for more accurate construction of clusters. Depending on the value of the diffusion-depth parameter, the presented approach can determine very well both local clusters and global structure of data. At the same time, the ability to combine single outcomes of the method results in better cluster segmentation. Due to this property, the proposed method performs well on data sets where other conventional clustering methods fail. We test the method with both simulated and real-world data sets. The results support our theoretical conjectures on improved accuracy compared to other selected methods.
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