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Combining Multiple Clustering Systems

机译:组合多个集群系统

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摘要

Three methods for combining multiple clustering systems are presented and evaluated, focusing on the problem of finding the correspondence between clusters of different systems. In this work, the clusters of individual systems are represented in a common space and their correspondence estimated by either "clustering clusters" or with Singular Value Decomposition. The approaches are evaluated for the task of topic discovery on three major corpora and eight different clustering algorithms and it is shown experimentally that combination schemes almost always offer gains compared to single systems, but gains from using a combination scheme depend on the underlying clustering systems.
机译:提出并评估了三种组合多个聚类系统的方法,重点是寻找不同系统的聚类之间的对应关系的问题。在这项工作中,单个系统的群集在一个公共空间中表示,并且它们的对应关系通过“群集群集”或奇异值分解进行估计。这些方法针对三种主要语料库和八种不同的聚类算法的主题发现任务进行了评估,并通过实验表明,与单个系统相比,组合方案几乎总能带来收益,但是使用组合方案的收益取决于底层的聚类系统。

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