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A Structural-Lexical Measure of Semantic Similarity for Geo-Knowledge Graphs

机译:地理知识图语义相似度的结构词汇量度

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Graphs have become ubiquitous structures to encode geographic knowledge online. The Semantic Web’s linked open data, folksonomies, wiki websites and open gazetteers can be seen as geo-knowledge graphs, that is labeled graphs whose vertices represent geographic concepts and whose edges encode the relations between concepts. To compute the semantic similarity of concepts in such structures, this article defines the network-lexical similarity measure (NLS). This measure estimates similarity by combining two complementary sources of information: the network similarity of vertices and the semantic similarity of the lexical definitions. NLS is evaluated on the OpenStreetMap Semantic Network, a crowdsourced geo-knowledge graph that describes geographic concepts. The hybrid approach outperforms both network and lexical measures, obtaining very strong correlation with the similarity judgments of human subjects.
机译:图形已经成为普遍使用的结构,可以在线编码地理知识。语义网的链接的开放数据,民俗分类法,Wiki网站和公开地名词典可以看作是地理知识图,这些图被标记为图,其顶点表示地理概念,并且其边缘编码概念之间的关系。为了计算此类结构中概念的语义相似性,本文定义了网络词汇相似性度量(NLS)。该度量通过组合两个互补的信息源来估计相似性:顶点的网络相似性和词汇定义的语义相似性。 NLS在OpenStreetMap语义网络上进行评估,OpenStreetMap语义网络是描述地理概念的众包地理知识图。混合方法的性能优于网络和词汇量,与人类受试者的相似性判断具有非常强的相关性。

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