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WNOntoSim A Hybrid Approach for Measuring Semantic Similarity between Ontologies Based on WordNet

机译:WNOntoSim一种基于WordNet的本体之间语义相似度度量的混合方法

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摘要

Ontology is a conceptual model, which is used on data exchange between heterogeneous data sources in semantic web, and liked by many people. Because of the shortage of the uniform standards for constructing ontology, it brings in lots of problems of ontology heterogeneity. Ontology mapping aims at these problems, and semantic similarity between ontologies is the key part of ontology mapping. In this paper we propose a hybrid approach for measuring semantic similarity between ontologies based on WordNet, denoted by WNOntoSim. WordNet is used to calculate semantic similarity between ontologies in elemental level. We compute semantic similarity between ontologies in structural level by constructing contexts of node where the structure of ontology is encoded, and combine these scores to obtain a comprehensive semantic similarity between ontologies. Experimental results on test dataset of competition on ontology matching provided by 3rd ISWC show WNOntoSim gives a better performance and improves the Average F-Measure, comparing against some state of the art related methods. Especially, it displays more competitive in general ontology.
机译:本体是一种概念模型,用于语义Web中异构数据源之间的数据交换,受到了很多人的欢迎。由于缺乏构建本体的统一标准,因此带来了本体异质性的诸多问题。本体映射是针对这些问题的,本体之间的语义相似性是本体映射的关键部分。在本文中,我们提出了一种基于WordNet的,用于度量本体之间语义相似性的混合方法,用WNOntoSim表示。 WordNet用于在元素级别上计算本体之间的语义相似度。我们通过构造编码本体结构的节点的上下文,在结构级别上计算本体之间的语义相似度,并结合这些分数以获得本体之间的全面语义相似度。由第三届ISWC提供的关于本体匹配竞争的测试数据集的实验结果表明,与某些现有技术相关方法相比,WNOntoSim具有更好的性能并改进了平均F测度。特别是,它在一般本体上显示出更具竞争力。

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