针对鲁棒文档聚类的聚类集成特征多样性

Xavier Sevillano, Germán Cobo, Francesc Alías, J. Socoró
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引用次数: 18

摘要

文档聚类系统的性能依赖于使用最优的文本表示,这不仅难以事先确定,而且可能因聚类问题而异。作为构建健壮文档聚类的第一步,本文提出了一种基于特征多样性和聚类集成的策略。在一个二元聚类问题上进行的实验表明,我们的方法对接近最优的模型顺序选择具有鲁棒性,并且能够检测到测试平台中不同文档表示之间的建设性交互。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Feature diversity in cluster ensembles for robust document clustering
The performance of document clustering systems depends on employing optimal text representations, which are not only difficult to determine beforehand, but also may vary from one clustering problem to another. As a first step towards building robust document clusterers, a strategy based on feature diversity and cluster ensembles is presented in this work. Experiments conducted on a binary clustering problem show that our method is robust to near-optimal model order selection and able to detect constructive interactions between different document representations in the test bed.
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