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Fuzzy semantic similarity in linked data using the OWA operator

机译:使用OWA运算符的链接数据中的模糊语义相似性

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摘要

Semantic similarity measure becomes profoundly important and useful in many applications of linked data. In this paper, we provide a novel solution for determining similarity between concepts in linked data while allowing the importance of properties to influence the similarity measure. Our proposed approach is implemented based on feature-based similarity model, which considers the shared objects between the concepts. First, we develop a fuzzy membership function to capture the importance of different properties, and then use ordered weighting averaging (OWA) operator for aggregation of multiple similarity measures corresponding to different importance levels of properties. Experimental evaluations confirm the suitability of the proposed method.
机译:语义相似性度量在链接数据的许多应用中变得极为重要和有用。在本文中,我们提供了一种新颖的解决方案,用于确定链接数据中概念之间的相似性,同时允许属性的重要性影响相似性度量。我们提出的方法是基于基于特征的相似性模型实现的,该模型考虑了概念之间的共享对象。首先,我们开发了一个模糊隶属函数来捕获不同属性的重要性,然后使用有序加权平均(OWA)运算符来聚合与属性的不同重要性级别相对应的多个相似性度量。实验评估证实了该方法的适用性。

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