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Ontologies and Worlds in Category Theory: Implications for Neural Systems

机译:范畴论中的本体论与世界:对神经系统的启示

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We propose category theory, the mathematical theory of structure, as a vehicle for defining ontologies in an unambiguous language with analytical and constructive features. Specifically, we apply categorical logic and model theory, based upon viewing an ontology as a sub-category of a category of theories expressed in a formal logic. In addition to providing mathematical rigor, this approach has several advantages. It allows the incremental analysis of ontologies by basing them in an interconnected hierarchy of theories, with an operation on the hierarchy that expresses the formation of complex theories from simple theories that express first principles. Another operation forms abstractions expressing the shared concepts in an array of theories. The use of categorical model theory makes possible the incremental analysis of possible worlds, or instances, for the theories, and the mapping of instances of a theory to instances of its more abstract parts. We describe the theoretical approach by applying it to the semantics of neural networks.
机译:我们提出类别理论,即结构的数学理论,作为定义具有分析性和建设性特征的明确语言中本体的一种手段。具体来说,我们基于将本体视为形式逻辑中表达的一类理论的子类别,应用分类逻辑和模型理论。除了提供严格的数学方法外,此方法还具有许多优点。它允许将本体基于相互联系的理论层次结构中进行增量分析,并在层次结构上进行操作,该层次结构表示从表达第一原理的简单理论中形成的复杂理论。另一操作形成抽象形式,以一系列理论表示共享的概念。使用分类模型理论可以对理论的可能世界或实例进行增量分析,并将理论实例映射到其抽象部分的实例。我们通过将其应用于神经网络的语义来描述理论方法。

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