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Article

Detecting Highly Overlapping Communities with Model-Based Overlapping Seed Expansion

Published: 09 August 2010 Publication History

Abstract

As research into community finding in social networks progresses, there is a need for algorithms capable of detecting overlapping community structure. Many algorithms have been proposed in recent years that are capable of assigning each node to more than a single community. The performance of these algorithms tends to degrade when the ground-truth contains a more highly overlapping community structure, with nodes assigned to more than two communities. Such highly overlapping structure is likely to exist in many social networks, such as Facebook friendship networks. In this paper we present a scalable algorithm, MOSES, based on a statistical model of community structure, which is capable of detecting highly overlapping community structure, especially when there is variance in the number of communities each node is in. In evaluation on synthetic data MOSES is found to be superior to existing algorithms, especially at high levels of overlap. We demonstrate MOSES on real social network data by analyzing the networks of friendship links between students of five US universities.

Cited By

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  • (2022)Direction-optimizing Label Propagation Framework for Structure Detection in Graphs: Design, Implementation, and Experimental AnalysisACM Journal of Experimental Algorithmics10.1145/356459327(1-31)Online publication date: 13-Dec-2022
  • (2019)Community Detection through Likelihood Optimization: In Search of a Sound ModelThe World Wide Web Conference10.1145/3308558.3313429(1498-1508)Online publication date: 13-May-2019
  • (2019)Link communities detectionNeurocomputing10.1016/j.neucom.2019.07.003367:C(46-54)Online publication date: 20-Nov-2019
  • Show More Cited By

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Information & Contributors

Information

Published In

cover image Guide Proceedings
ASONAM '10: Proceedings of the 2010 International Conference on Advances in Social Networks Analysis and Mining
August 2010
473 pages
ISBN:9780769541389

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IEEE Computer Society

United States

Publication History

Published: 09 August 2010

Author Tags

  1. Community assignment
  2. complex networks
  3. overlapping
  4. social networks

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Overall Acceptance Rate 116 of 549 submissions, 21%

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Cited By

View all
  • (2022)Direction-optimizing Label Propagation Framework for Structure Detection in Graphs: Design, Implementation, and Experimental AnalysisACM Journal of Experimental Algorithmics10.1145/356459327(1-31)Online publication date: 13-Dec-2022
  • (2019)Community Detection through Likelihood Optimization: In Search of a Sound ModelThe World Wide Web Conference10.1145/3308558.3313429(1498-1508)Online publication date: 13-May-2019
  • (2019)Link communities detectionNeurocomputing10.1016/j.neucom.2019.07.003367:C(46-54)Online publication date: 20-Nov-2019
  • (2018)A fast multi-level algorithm for community detection in directed online social networksJournal of Information Science10.1177/016555151769830544:3(392-407)Online publication date: 1-Jun-2018
  • (2018)Overlapping Community Detection by Node-WeightingProceedings of the 2nd International Conference on Compute and Data Analysis10.1145/3193077.3193086(70-74)Online publication date: 23-Mar-2018
  • (2017)Metrics for Community AnalysisACM Computing Surveys10.1145/309110650:4(1-37)Online publication date: 30-Aug-2017
  • (2017)An upper approximation based community detection algorithm for complex networksDecision Support Systems10.1016/j.dss.2017.02.01096:C(103-118)Online publication date: 1-Apr-2017
  • (2016)Ensemble-based algorithms to detect disjoint and overlapping communities in networksProceedings of the 2016 IEEE/ACM International Conference on Advances in Social Networks Analysis and Mining10.5555/3192424.3192438(73-80)Online publication date: 18-Aug-2016
  • (2015)Overlapping Communities via k-Connected Ego Centered GroupsProceedings of the 2015 IEEE/ACM International Conference on Advances in Social Networks Analysis and Mining 201510.1145/2808797.2809351(1598-1599)Online publication date: 25-Aug-2015
  • (2015)Detecting hierarchical structure of community members in social networksKnowledge-Based Systems10.1016/j.knosys.2015.05.02687:C(3-15)Online publication date: 1-Oct-2015
  • Show More Cited By

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