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Extended Analysis of Topological-Pattern-Based Ontology Enrichment

机译:基于拓扑模式的本体扩展的扩展分析

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摘要

Maintenance of biomedical ontologies is difficult. We have previously developed a topological-pattern-based method to deal with the problem of identifying concepts in a reference ontology that could be of interest for insertion into a target ontology. Assuming that both ontologies are parts of the Unified Medical Language System (UMLS), the method suggests approximate locations where the target ontology could be extended with new concepts from the reference ontology. However, the final decision about each concept has to be made by a human expert. In this paper, we describe the universe of cross-ontology topological patterns in quantitative terms. We then present a theoretical analysis of the number of potential placements of reference concepts in a path in a target ontology, allowing for new cross-ontology synonyms. This provides a rough estimate of what expert resources need to be allocated for the task. One insight in previous work on this topic was the large percentage of cases where importing concepts was impossible, due to a configuration called “alternative classification.” In this paper, we confirm this observation. Our target ontology is the National Cancer Institute thesaurus (NCIt). However, the methods can be applied to other pairs of ontologies with hierarchical relationships from the UMLS.
机译:维持生物医学本体是困难的。先前我们已经开发了一种基于拓扑模式的方法来处理在参考本体中标识概念的问题,该参考本体可能对于插入目标本体感兴趣。假设这两种本体都是统一医学语言系统(UMLS)的一部分,则该方法建议可以使用参考本体中的新概念扩展目标本体的大概位置。但是,关于每个概念的最终决定必须由人类专家做出。在本文中,我们用定量的术语描述了跨本体拓扑模式。然后,我们对目标本体中路径中参考概念的潜在放置数量进行了理论分析,从而允许使用新的跨本体同义词。这样可以粗略估计需要为该任务分配哪些专家资源。以前有关该主题的工作的一个见解是,由于配置为“替代分类”,因此无法导入概念的情况占很大比例。在本文中,我们证实了这一观察。我们的目标本体是美国国家癌症研究所词库(NCIt)。但是,该方法可以应用于来自UMLS的具有分层关系的其他本体对。

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