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Generating a Diverse Set of High-Quality Clusterings (1108.0017v1)
Published 29 Jul 2011 in cs.LG and cs.DB
Abstract: We provide a new framework for generating multiple good quality partitions (clusterings) of a single data set. Our approach decomposes this problem into two components, generating many high-quality partitions, and then grouping these partitions to obtain k representatives. The decomposition makes the approach extremely modular and allows us to optimize various criteria that control the choice of representative partitions.
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