Overlapping Community Detection Algorithm Based on Spectral and Fuzzy C-Means Clustering
Community detection is the detection and revelation of the communities inherent in different types of complex networks, which can help people understand various functions and hidden rules of the complex networks to predict their future behavior. The spectral clustering algorithm suffers from the dis...
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Published in | Computer Supported Cooperative Work and Social Computing Vol. 917; pp. 487 - 497 |
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Main Authors | , , , |
Format | Book Chapter |
Language | English |
Published |
Singapore
Springer
2019
Springer Singapore |
Series | Communications in Computer and Information Science |
Subjects | |
Online Access | Get full text |
ISBN | 9789811330438 9811330433 |
ISSN | 1865-0929 1865-0937 |
DOI | 10.1007/978-981-13-3044-5_36 |
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Abstract | Community detection is the detection and revelation of the communities inherent in different types of complex networks, which can help people understand various functions and hidden rules of the complex networks to predict their future behavior. The spectral clustering algorithm suffers from the disadvantage of spending too much time for calculating eigenvectors, so it can’t apply in large-scale networks. This paper puts forward the overlapping community detection algorithm devised upon spectral with Fuzzy c-means clustering. Firstly, the node similarity is calculated according to the influence of attribute features on nodes. Secondly, the node similarity is combined with the Jaccard similarity to construct the similarity matrix. Thirdly, the feature decomposition is performed on the matrix by using the DPIC (Deflation-based power iteration clustering) method. Finally, the advanced version of the traditional Fuzzy c-means algorithm can find the overlapping communities. The results of experiments reveal that it can detect communities on real and artificial datasets effectively and accurately. |
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AbstractList | Community detection is the detection and revelation of the communities inherent in different types of complex networks, which can help people understand various functions and hidden rules of the complex networks to predict their future behavior. The spectral clustering algorithm suffers from the disadvantage of spending too much time for calculating eigenvectors, so it can’t apply in large-scale networks. This paper puts forward the overlapping community detection algorithm devised upon spectral with Fuzzy c-means clustering. Firstly, the node similarity is calculated according to the influence of attribute features on nodes. Secondly, the node similarity is combined with the Jaccard similarity to construct the similarity matrix. Thirdly, the feature decomposition is performed on the matrix by using the DPIC (Deflation-based power iteration clustering) method. Finally, the advanced version of the traditional Fuzzy c-means algorithm can find the overlapping communities. The results of experiments reveal that it can detect communities on real and artificial datasets effectively and accurately. |
Author | Liao, Qinwu Guo, Kun He, Xiaoshan Yan, Qiaoling |
Author_xml | – sequence: 1 givenname: Xiaoshan surname: He fullname: He, Xiaoshan email: Miller_he614@163.com organization: Key Laboratory of Spatial Data Mining and Information Sharing, Ministry of Education, Fuzhou, China – sequence: 2 givenname: Kun surname: Guo fullname: Guo, Kun email: gukn123@163.com organization: Key Laboratory of Spatial Data Mining and Information Sharing, Ministry of Education, Fuzhou, China – sequence: 3 givenname: Qinwu surname: Liao fullname: Liao, Qinwu email: liaoqinwu@sgitg.sgcc.com.cn organization: Power Science and Technology Corporation State Grid Information and Telecommunication Group, Xiamen, China – sequence: 4 givenname: Qiaoling surname: Yan fullname: Yan, Qiaoling email: yanqiaoling@sgitg.sgcc.com.cn organization: Power Science and Technology Corporation State Grid Information and Telecommunication Group, Xiamen, China |
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SubjectTerms | Fuzzy C-means Overlapping community Spectral cluster |
Title | Overlapping Community Detection Algorithm Based on Spectral and Fuzzy C-Means Clustering |
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