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Class Structures and Lexical Similarities of Class Names for Ontology Matching

机译:本体匹配类别名称的类结构和词汇相似之处

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Semantic Interoperability is a major issue for National Spatial data Infrastructures (NSDIs) and mapping across heterogeneous databases is essential for such interoperability. Mapping of schemas based on ontology mapping provides opportunities for semantic translation of schemas elements and hence for database queries across heterogeneous sources. Such semantics based mappings are usually human centered processes. This paper demonstrates semi-automatic mapping using semantic similarity values from an electronic lexicon. Lexical similarity of class names and class structures constitute knowledge base for mapping between two schemas. We employ semantic mapping based on synonym similarity matches from WordNet. We use heuristics based propagation of similarities using attribute mapping and superclass-subclass relations. The machine based similarity values are seen to be comparable to human generated values of mapping.
机译:语义互操作性是国家空间数据基础设施(NSDIS)的主要问题,并且异构数据库映射对于这种互操作性至关重要。基于本体映射的模式映射提供了模式元素的语义翻译的机会,从而提供异构来源的数据库查询。基于语义的映射通常是人为中心的过程。本文展示了来自电子词典的语义相似值的半自动映射。类名称和类结构的词汇相似性构成了两个模式之间映射的知识库。我们使用Wordnet的同义词相似性匹配来使用语义映射。我们使用基于启发式的相似性传播,使用属性映射和超类 - 子类关系。看到基于机器的相似性值与人生成的映射值相当。

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