基于树模式的知识分析

F. Hadzic, T. Dillon, E. Chang
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引用次数: 4

摘要

由于数据对象之间的关系可以以更有意义的方式表示,因此树形结构的知识表示越来越多地被使用。为了使用不同的参数挖掘不同的子树类型,开发了许多树挖掘算法。在研究的这一点上,讨论在当前的树挖掘框架内可以解决什么样的子问题是有用的。在本文中,我们提供了树挖掘领域的发展概况,并讨论了每个发展的动机和有用的应用领域。讨论了使用不同的树挖掘参数和约束的含义。这样的概述对于那些不太熟悉树挖掘领域的人特别有用,因为它可以揭示他们感兴趣领域内的有用应用程序。它为哪种类型的树挖掘对其特定应用最有用提供了指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Knowledge Analysis with Tree Patterns
Tree-structured knowledge representations are increasingly being used since the relationships between data objects can be represented in a more meaningful way. A number of tree mining algorithms were developed for mining different subtree types using different parameters. At this point in research it would be useful to discuss what kind of sub-problems can be solved within the current tree mining framework. In this paper we provide a general overview of the development in the area of tree mining and discuss motivations and useful application areas for each development. Implications of using different tree mining parameters and constraints are discussed. Such an overview will be particularly useful for those not so familiar with the area of tree mining as it can reveal useful applications within their domain of interest. It gives guidance as to which type of tree mining will be most useful for their particular application.
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