Semantic similarity in heterogeneous ontologies

Elisa Chiabrando, S. Likavec, Ilaria Lombardi, Claudia Picardi, D. T. Dupré
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引用次数: 16

Abstract

Recent extensive usage of ontologies as knowledge bases that enable rigorous representation and reasoning over heterogenous data poses certain challenges in their construction and maintenance. Many of these ontologies are incomplete, containing many dense sub-ontologies. A need arises for a measure that would help calculate the similarity between the concepts in these kinds of ontologies. In this work, we introduce a new similarity measure for ontological concepts that takes these issues into account. It is based on conceptual specificity, which measures how much a certain concept is relevant in a given context, and on conceptual distance, which introduces different edge lengths in the ontology graph. We also address the problem of computing similarity between concepts in the presence of implicit classes in ontologies. The evaluation of our approach shows an improvement over Leacock and Chodorow's distance based measure. Finally, we provide two application domains which can benefit when this similarity measure is used.
异构本体中的语义相似性
最近广泛使用本体作为对异构数据进行严格表示和推理的知识库,这对本体的构建和维护提出了一定的挑战。这些本体中有许多是不完整的,包含许多密集的子本体。需要一种度量来帮助计算这类本体中概念之间的相似性。在这项工作中,我们为考虑到这些问题的本体论概念引入了一种新的相似性度量。它基于概念专用性和概念距离,概念专用性衡量了特定概念在给定上下文中的相关性,概念距离在本体图中引入了不同的边长度。我们还解决了本体中存在隐式类时概念之间计算相似度的问题。对我们方法的评估表明,与Leacock和Chodorow的基于距离的度量相比,我们的方法有了改进。最后,我们提供了两个应用领域,当使用这种相似性度量时,它们可以受益。
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