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Approach to visualisation of evolving association rule models

机译:关联规则模型的可视化方法

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Visualization of evolving data mining models can allow good insight for a data analyst about these models and their changes in time. This paper presents our approach to visualization of evolving association rule models. This approach is based on graph visualization where nodes of the graph represent itemsets, and edges represent association rules. We show how evolving models, produced by data mining algorithms, are stored in the knowledge base, and then how they can be filtered and visualized. Two ways of graph based visualization of evolving models are shown using force based layout algorithms — local and global layout. Experiments with both are illustrated with emphasis on the latter.
机译:不断发展的数据挖掘模型的可视化可以使数据分析师对这些模型及其时间变化有很好的了解。本文介绍了我们对不断发展的关联规则模型进行可视化的方法。此方法基于图可视化,其中图的节点表示项目集,而边表示关联规则。我们展示了如何将由数据挖掘算法生成的不断发展的模型存储在知识库中,然后如何对其进行过滤和可视化。使用基于力的布局算法显示了基于图形的演化模型可视化的两种方法-局部布局和全局布局。两者的实验都以后者为重点进行了说明。

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