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10.1109/NCVPRIPG.2011.17guideproceedingsArticle/Chapter ViewAbstractPublication PagesConference Proceedingsacm-pubtype
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Weighted Co-clustering Based Clustering Ensemble

Published: 15 December 2011 Publication History

Abstract

Consensus clustering has emerged as an important elaboration of classical clustering problem that improves quality and robustness in clustering by optimally combining the results of different clustering process. In this paper we propose a new method of arriving at a consensus clustering. We assign confidence score to each partition in the ensemble and compute weighted co-association for each pair of objects. In order to derive the consensus clustering from co-association matrix, we consider two cases of co-clustering based clustering technique to group the rows and columns simultaneously. The objective is to derive as many as homogeneous blocks as possible. The use of co-clustering based clustering technique captures the transitive relationship. We show empirically that for benchmark datasets, for both cases of our technique yields better consensus clustering than other major algorithms.

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  • (2016)A weight-incorporated similarity-based clustering ensemble method based on swarm intelligenceKnowledge-Based Systems10.1016/j.knosys.2016.04.021104:C(156-164)Online publication date: 15-Jul-2016

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      cover image Guide Proceedings
      NCVPRIPG '11: Proceedings of the 2011 Third National Conference on Computer Vision, Pattern Recognition, Image Processing and Graphics
      December 2011
      256 pages
      ISBN:9780769545998

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      IEEE Computer Society

      United States

      Publication History

      Published: 15 December 2011

      Author Tags

      1. Clustering ensemble
      2. Co-association
      3. Co-clustering

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      • (2016)A weight-incorporated similarity-based clustering ensemble method based on swarm intelligenceKnowledge-Based Systems10.1016/j.knosys.2016.04.021104:C(156-164)Online publication date: 15-Jul-2016

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