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Community Detection Algorithm Combining Stochastic Block Model and Attribute Data Clustering
by
Tanaka, Kazuyuki
, Kataoka, Shun
, Yasuda, Muneki
, Kobayashi, Takuto
in
Algorithms
/ Bayesian analysis
/ Clustering
/ Community detection
/ Conditional probability
/ Mathematical models
/ Stochastic models
2016
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Community Detection Algorithm Combining Stochastic Block Model and Attribute Data Clustering
by
Tanaka, Kazuyuki
, Kataoka, Shun
, Yasuda, Muneki
, Kobayashi, Takuto
in
Algorithms
/ Bayesian analysis
/ Clustering
/ Community detection
/ Conditional probability
/ Mathematical models
/ Stochastic models
2016
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Do you wish to request the book?
Community Detection Algorithm Combining Stochastic Block Model and Attribute Data Clustering
by
Tanaka, Kazuyuki
, Kataoka, Shun
, Yasuda, Muneki
, Kobayashi, Takuto
in
Algorithms
/ Bayesian analysis
/ Clustering
/ Community detection
/ Conditional probability
/ Mathematical models
/ Stochastic models
2016
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Community Detection Algorithm Combining Stochastic Block Model and Attribute Data Clustering
Paper
Community Detection Algorithm Combining Stochastic Block Model and Attribute Data Clustering
2016
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Overview
We propose a new algorithm to detect the community structure in a network that utilizes both the network structure and vertex attribute data. Suppose we have the network structure together with the vertex attribute data, that is, the information assigned to each vertex associated with the community to which it belongs. The problem addressed this paper is the detection of the community structure from the information of both the network structure and the vertex attribute data. Our approach is based on the Bayesian approach that models the posterior probability distribution of the community labels. The detection of the community structure in our method is achieved by using belief propagation and an EM algorithm. We numerically verified the performance of our method using computer-generated networks and real-world networks.
Publisher
Cornell University Library, arXiv.org
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