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Identifying Key Concepts in an Ontology, through the Integration of Cognitive Principles with Statistical and Topological Measures

机译:通过将认知原理与统计和拓扑度量相集成来识别本体中的关键概念

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In this paper we address the issue of identifying the concepts in an ontology, which best summarize what the ontology is about. Our approach combines a number of criteria, drawn from cognitive science, network topology, and lexical statistics. In the paper we show two versions of our algorithm, which have been evaluated against the results produced by human experts. We report that the latest version of the algorithm performs very well, exhibiting an . excellent degree of correlation with the choices of the experts. While the generation of automatic methods for ontology summarization is an interesting research issue in itself, the work described here also provides a basis for novel approaches to a variety of ontology engineering tasks, including ontology matching, automatic classification, ontology modularization, and ontology evaluation.
机译:在本文中,我们解决了识别本体中的概念的问题,该问题最能概括本体论的含义。我们的方法结合了许多标准,这些标准来自于认知科学,网络拓扑和词法统计。在本文中,我们显示了我们算法的两个版本,这些版本已根据人类专家产生的结果进行了评估。我们报告说,该算法的最新版本效果非常好,显示为。与专家的选择具有极好的相关度。尽管自动生成本体摘要的方法本身就是一个有趣的研究问题,但此处描述的工作还为各种本体工程任务(包括本体匹配,自动分类,本体模块化和本体评估)的新颖方法提供了基础。

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