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INVESTIGATING IMPLICIT KNOWLEDGE IN ONTOLOGIES WITH APPLICATION TO THE ANATOMICAL DOMAIN

机译:在解剖结构域中调查本体中的内在知识

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Knowledge in biomedical ontologies can be explicitly represented (often by means of semantic relations), but may also be implicit, i.e., embedded in the concept names and inferable from various combinations of semantic relations. This paper investigates implicit knowledge in two ontologies of anatomy: the Foundational Model of Anatomy and GALEN. The methods consist of extracting the knowledge explicitly represented, acquiring the implicit knowledge through augmentation and inference techniques, and identifying the origin of each semantic relation. The number of relations (12 million in FMA and 4.6 million in GALEN), broken down by source, is presented. Major findings include: each technique provides specific relations; and many relations can be generated by more than one technique. The application of these findings to ontology auditing, validation, and maintenance is discussed, as well as the application to ontology integration.
机译:可以明确地代表生物医学本体的知识(通常通过语义关系),但也可以是隐含的,即,嵌入在概念名称中并从语义关系的各种组合中推断出来。本文调查了解剖学的两个本体中的隐性知识:解剖学和胶林的基础模型。该方法包括提取明确表示的知识,通过增强和推理技术获取隐式知识,并识别每个语义关系的起源。提出了由来源分解的关系的关系数(FMA和460万英镑)。主要调查结果包括:每种技术都提供了具体的关系;并且许多关系可以通过多种技术产生。讨论了这些发现对本体审计,验证和维护的应用,以及本体集成的应用。

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