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Interactive textual feature selection for consensus clustering

机译:交互式文本特征选择,用于共识聚类

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Consensus clustering and interactive feature selection are very useful methods to extract and manage knowledge from texts. While consensus clustering allows the aggregation of different clustering solutions into a single robust clustering solution, the interactive feature selection facilitates the incorporation of the users' experience in the clustering tasks by selecting a set of textual features, i.e., including user's supervision at the term-level. We propose an approach for incorporating interactive textual feature selection into consensus clustering. Experimental results on several text collections demonstrate that our approach significantly improves consensus clustering accuracy, even when only few textual features are selected by the users.
机译:共识聚类和交互式功能选择是从文本中提取和管理知识的非常有用的方法。虽然共识聚类允许将不同的聚类解决方案聚合到一个强大的聚类解决方案中,但交互式功能选择通过选择一组文本功能(即包括在术语“-”中包括用户的监督),有助于将用户的体验纳入聚类任务中。水平。我们提出了一种将交互式文本特征选择纳入共识聚类的方法。在多个文本集合上的实验结果表明,即使用户仅选择了很少的文本特征,我们的方法也可以显着提高共识聚类的准确性。

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