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Flexible and robust co-regularized multi-domain graph clustering
2013
Proceedings of the 19th ACM SIGKDD international conference on Knowledge discovery and data mining - KDD '13
Multi-view graph clustering aims to enhance clustering performance by integrating heterogeneous information collected in different domains. Each domain provides a different view of the data instances. Leveraging cross-domain information has been demonstrated an effective way to achieve better clustering results. Despite the previous success, existing multi-view graph clustering methods usually assume that different views are available for the same set of instances. Thus instances in different
doi:10.1145/2487575.2487582
dblp:conf/kdd/ChengZGWSW13
fatcat:l2a4qexocbcyll2iqnlku67neu