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Stable Model Theory for Extended RDF Ontologies

机译:扩展RDF本体的稳定模型理论

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摘要

Ontologies and automated reasoning are the building blocks of the Semantic Web initiative. Derivation rules can be included in an ontology to define derived concepts based on base concepts. For example, rules allow to define the extension of a class or property based on a complex relation between the extensions of the same or other classes and properties. On the other hand, the inclusion of negative information both in the form of negation-as-failure and explicit negative information is also needed to enable various forms of reasoning. In this paper, we extend RDF graphs with weak and strong negation, as well as derivation rules. The ERDF stable model semantics of the extended framework (Extended RDF) is defined, extending RDF(S) semantics. A distinctive feature of our theory, which is based on partial logic, is that both truth and falsity extensions of properties and classes are considered, allowing for truth value gaps. Our framework supports both closed-world and open-world reasoning through the explicit representation of the particular closed-world assumptions and the ERDF ontological categories of total properties and total classes.
机译:本体和自动推理是语义网计划的基础。派生规则可以包含在本体中,以基于基本概念定义派生概念。例如,规则允许基于相同或其他类和属性的扩展之间的复杂关系来定义类或属性的扩展。另一方面,还需要以否定否定形式和明确的否定信息形式包含否定信息,以实现各种形式的推理。在本文中,我们扩展了带有弱和强否定关系的RDF图以及推导规则。定义了扩展框架(Extended RDF)的ERDF稳定模型语义,从而扩展了RDF(S)语义。我们的理论基于局部逻辑的一个显着特征是,考虑了属性和类的真实性和虚假性扩展,从而允许了真实性价值差距。我们的框架通过明确表示特定的封闭世界假设以及总属性和总类别的ERDF本体论类别,支持封闭世界和开放世界推理。

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