| Revisiting probabilistic models for clustering with pair-wise constraints |
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ICML; Vol. 227
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Proceedings of the 24th international conference on Machine learning
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Corvalis, Oregon
Pages: 673 - 680
Year of Publication: 2007
ISBN:978-1-59593-793-3
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Downloads (6 Weeks): 2, Downloads (12 Months): 29, Citation Count: 1
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ABSTRACT
We revisit recently proposed algorithms for probabilistic clustering with pair-wise constraints between data points. We evaluate and compare existing techniques in terms of robustness to misspecified constraints. We show that the technique that strictly enforces the given constraints, namely the chunklet model, produces poor results even under a small number of misspecified constraints. We further show that methods that penalize constraint violation are more robust to misspecified constraints but have undesirable local behaviors. Based on this evaluation, we propose a new learning technique, extending the chunklet model to allow soft constraints represented by an intuitive measure of confidence in the constraint.
REFERENCES
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CITED BY
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Wenyuan Dai , Qiang Yang , Gui-Rong Xue , Yong Yu, Self-taught clustering, Proceedings of the 25th international conference on Machine learning, p.200-207, July 05-09, 2008, Helsinki, Finland
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