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Document clustering for electronic meetings : an experimental comparison of two techniques

机译:电子会议文件聚类:两种技术的实验比较

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摘要

In this article, we report our implementation and comparison of two text clustering techniques. One is based on Ward's clustering and the other on Kohonen's Self organizing Maps. We have evaluated how closely clusters produced by a computer resemble those created by human experts. We have also measured the time that it takes for an expert to “clean up” the automatically produced clusters. The technique based on Ward's clustering was found to be more precise. Both techniques have worked equally well in detecting associations between text documents. We used text messages obtained from group brainstorming meetings.
机译:在本文中,我们报告了两种文本聚类技术的实现和比较。一种基于Ward的聚类,另一种基于Kohonen的自组织图。我们评估了计算机生成的群集与人类专家创建的群集的相似程度。我们还测量了专家“清理”自动生成的集群所需的时间。发现基于Ward聚类的技术更为精确。两种技术在检测文本文档之间的关联方面均表现良好。我们使用了从集体讨论会议获得的短信。

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