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Lom: A Linguistic Ontologymatcher Based On Information Retrieval

机译:Lom:基于信息检索的语言本体匹配器

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摘要

Ontology mapping is a key problem to be solved for the success of the Semantic Web and related technologies. An ontology mapping algorithm aims at finding correspondences (or mappings) between entities of the source and target ontologies by combining several matching components, i.e., individual matchers, that exploit one or more sources of information encoded within the ontologies. In this paper, we investigate linguistic techniques for ontology mapping and underline their importance in paving the way to other matching techniques. We define a general mapping model architecture and discuss an implementation in the Lucene ontology matcher (LOM). LOM leverages the features of the Lucene search engine library. The basic idea is to gather the different kinds of linguistic information of the source ontology entities in Lucene documents that will be stored into an index. Mappings are discovered by using the values of entities in the target ontology as search arguments against the index created from the source ontology. Extensive experimental results using a popular benchmark test suite show the effectiveness of this approach in terms of precision, recall, F-measure and execution time as compared to other linguistic approaches.
机译:本体映射是语义网及相关技术成功解决的关键问题。本体映射算法旨在通过组合利用本体中编码的一个或多个信息源的几个匹配组件(即,单个匹配器)来找到源本体和目标本体的实体之间的对应关系(或映射)。在本文中,我们研究了用于本体映射的语言技术,并强调了它们在为其他匹配技术铺平道路方面的重要性。我们定义了一个通用的映射模型架构,并讨论了Lucene本体匹配器(LOM)中的实现。 LOM利用Lucene搜索引擎库的功能。基本思想是在Lucene文档中收集源本体实体的各种语言信息,这些信息将存储在索引中。通过使用目标本体中实体的值作为针对从源本体中创建的索引的搜索参数来发现映射。与其他语言方法相比,使用流行的基准测试套件的大量实验结果表明,该方法在精度,查全率,F量度和执行时间方面是有效的。

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