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A Prediction-Based Visual Approach for Cluster Exploration and Cluster Validation by HOV~3

机译:基于预测的可视化方法用于HOV〜3的聚类探索和聚类验证

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摘要

Predictive knowledge discovery is an important knowledge acquisition method. It is also used in the clustering process of data mining. Visualization is very helpful for high dimensional data analysis, but not precise and this limits its usability in quantitative cluster analysis. In this paper, we adopt a visual technique called HOV~3 to explore and verify clustering results with quantified measurements. With the quantified contrast between grouped data distributions produced by HOV~3, users can detect clusters and verify their validity efficiently.
机译:预测性知识发现是一种重要的知识获取方法。它也用于数据挖掘的集群过程。可视化对于高维数据分析非常有帮助,但不够精确,这限制了其在定量聚类分析中的可用性。在本文中,我们采用一种称为HOV〜3的可视技术来探索和验证量化结果的聚类结果。利用HOV〜3产生的分组数据分布之间的定量对比,用户可以检测聚类并有效地验证其有效性。

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