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Predicting Category Additions in a Topic Hierarchy

机译:预测主题层次结构中的类别添加

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This paper discusses the problem of predicting the structural changes in an ontology. It addresses ontologies that contain instances in addition to concepts. The focus is on an ontology where the instances are textual documents, but the approach presented in this document is general enough to also work with other kinds of instances, as long as a similarity measure can be defined over them. We examine the changes in the Open Directory Project ontology of Web pages over a period of several years and analyze the most common types of structural changes that took place during that time. We then present an approach for predicting one of the more common types of structural changes, namely the addition of a new concept that becomes the subconcept of an existing parent concept and adopts a few instances of this existing parent concept. We describe how this task can be formulated as a machine-learning problem and present an experimental evaluation of this approach that shows promising results of the proposed approach.
机译:本文讨论了预测本体结构变化的问题。它解决了在概念之外还包含实例的本体。焦点集中在实例是文本文档的本体上,但是本文档中介绍的方法足够通用,也可以与其他种类的实例一起使用,只要可以在它们之间定义相似性度量即可。我们检查了几年中网页的Open Directory Project本体中的更改,并分析了在此期间发生的最常见的结构更改类型。然后,我们提出一种预测结构更改的较常见类型之一的方法,即添加新概念,该新概念成为现有父级概念的子概念并采用此现有父级概念的一些实例。我们描述了如何将该任务表述为机器学习问题,并对该方法进行了实验评估,结果表明了该方法的良好前景。

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