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A Granular Computing Method for OWL Ontologies

机译:一种OWL本体的粒度计算方法

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We propose a method to extract and integrate fuzzy information granules from a populated OWL ontology. The purpose of this approach is to represent imprecise knowledge within an OWL ontology, as motivated by the fact that the Semantic Web is full of imprecise and uncertain information coming from perceptual data, incomplete data, data with errors, etc. In particular, we focus on Fuzzy Set Theory as a means for representing and processing information granules corresponding to imprecise concepts usually expressed by linguistic terms. The method applies to numerical data properties. The values of a property are first clustered to form a collection of fuzzy sets. Then, for each fuzzy set, the relative sigma-count is computed and compared with a number of predefined fuzzy quantifiers, which are therefore used to define new assertions that are added to the original ontology. In this way, the extended ontology provides both a punctual view and a granular view of individuals w.r.t. the selected property. We use a real-world ontology concerning hotels and populated with data of the Italian city of Pisa, to illustrate the method and to test its implementation. We show that it is possible to extract granular properties that can be described in natural language and smoothly integrated in the original ontology by means of annotated assertions.
机译:我们提出了一种从人口稠密的OWL本体中提取和整合模糊信息颗粒的方法。这种方法的目的是在OWL本体中表示不精确的知识,这是由于语义网充满了来自感知数据,不完整数据,有错误数据等的不精确和不确定信息。关于模糊集理论,它代表和处理通常用语言术语表达的不精确概念所对应的信息颗粒。该方法适用于数值数据属性。首先将属性的值聚类以形成模糊集的集合。然后,对于每个模糊集,计算相对的sigma计数,并将其与多个预定义的模糊量词进行比较,因此,这些量词用于定义添加到原始本体的新断言。以这种方式,扩展的本体既提供了准时的观点又提供了个人的详细观点。选定的属性。我们使用与酒店有关的现实世界本体,并填充意大利比萨市的数据来说明该方法并测试其实现。我们表明,有可能提取出可以用自然语言描述并通过注释断言平滑地集成到原始本体中的粒度属性。

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