Literature DB >> 28678864

Exploring the roles of cannot-link constraint in community detection via Multi-variance Mixed Gaussian Generative Model.

Liang Yang1,2, Meng Ge3, Di Jin3,4, Dongxiao He4, Huazhu Fu5, Jing Wang6, Xiaochun Cao2.   

Abstract

Due to the demand for performance improvement and the existence of prior information, semi-supervised community detection with pairwise constraints becomes a hot topic. Most existing methods have been successfully encoding the must-link constraints, but neglect the opposite ones, i.e., the cannot-link constraints, which can force the exclusion between nodes. In this paper, we are interested in understanding the role of cannot-link constraints and effectively encoding pairwise constraints. Towards these goals, we define an integral generative process jointly considering the network topology, must-link and cannot-link constraints. We propose to characterize this process as a Multi-variance Mixed Gaussian Generative (MMGG) Model to address diverse degrees of confidences that exist in network topology and pairwise constraints and formulate it as a weighted nonnegative matrix factorization problem. The experiments on artificial and real-world networks not only illustrate the superiority of our proposed MMGG, but also, most importantly, reveal the roles of pairwise constraints. That is, though the must-link is more important than cannot-link when either of them is available, both must-link and cannot-link are equally important when both of them are available. To the best of our knowledge, this is the first work on discovering and exploring the importance of cannot-link constraints in semi-supervised community detection.

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Mesh:

Year:  2017        PMID: 28678864      PMCID: PMC5497956          DOI: 10.1371/journal.pone.0178029

Source DB:  PubMed          Journal:  PLoS One        ISSN: 1932-6203            Impact factor:   3.240


  10 in total

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Authors:  M Girvan; M E J Newman
Journal:  Proc Natl Acad Sci U S A       Date:  2002-06-11       Impact factor: 11.205

2.  Graph spectra and the detectability of community structure in networks.

Authors:  Raj Rao Nadakuditi; M E J Newman
Journal:  Phys Rev Lett       Date:  2012-05-01       Impact factor: 9.161

3.  Identifying the role that animals play in their social networks.

Authors:  David Lusseau; M E J Newman
Journal:  Proc Biol Sci       Date:  2004-12-07       Impact factor: 5.349

4.  Uncovering the overlapping community structure of complex networks in nature and society.

Authors:  Gergely Palla; Imre Derényi; Illés Farkas; Tamás Vicsek
Journal:  Nature       Date:  2005-06-09       Impact factor: 49.962

5.  Modularity and community structure in networks.

Authors:  M E J Newman
Journal:  Proc Natl Acad Sci U S A       Date:  2006-05-24       Impact factor: 11.205

6.  Finding community structure in networks using the eigenvectors of matrices.

Authors:  M E J Newman
Journal:  Phys Rev E Stat Nonlin Soft Matter Phys       Date:  2006-09-11

7.  Benchmark graphs for testing community detection algorithms.

Authors:  Andrea Lancichinetti; Santo Fortunato; Filippo Radicchi
Journal:  Phys Rev E Stat Nonlin Soft Matter Phys       Date:  2008-10-24

8.  A Unified Semi-Supervised Community Detection Framework Using Latent Space Graph Regularization.

Authors:  Liang Yang; Xiaochun Cao; Di Jin; Xiao Wang; Dan Meng
Journal:  IEEE Trans Cybern       Date:  2014-12-18       Impact factor: 11.448

9.  Enhanced community structure detection in complex networks with partial background information.

Authors:  Zhong-Yuan Zhang; Kai-Di Sun; Si-Qi Wang
Journal:  Sci Rep       Date:  2013-11-19       Impact factor: 4.379

10.  Active link selection for efficient semi-supervised community detection.

Authors:  Liang Yang; Di Jin; Xiao Wang; Xiaochun Cao
Journal:  Sci Rep       Date:  2015-03-12       Impact factor: 4.379

  10 in total
  1 in total

1.  Overlapping community finding with noisy pairwise constraints.

Authors:  Elham Alghamdi; Ellen Rushe; Brian Mac Namee; Derek Greene
Journal:  Appl Netw Sci       Date:  2020-12-11
  1 in total

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