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From Ontology to Semantic Similarity: Calculation of Ontology-Based Semantic Similarity

机译:从本体论到语义相似度:基于本体论的语义相似度的计算

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摘要

Advances in high-throughput experimental techniques in the past decade have enabled the explosive increase of omics data, while effective organization, interpretation, and exchange of these data require standard and controlled vocabularies in the domain of biological and biomedical studies. Ontologies, as abstract description systems for domain-specific knowledge composition, hence receive more and more attention in computational biology and bioinformatics. Particularly, many applications relying on domain ontologies require quantitative measures of relationships between terms in the ontologies, making it indispensable to develop computational methods for the derivation of ontology-based semantic similarity between terms. Nevertheless, with a variety of methods available, how to choose a suitable method for a specific application becomes a problem. With this understanding, we review a majority of existing methods that rely on ontologies to calculate semantic similarity between terms. We classify existing methods into five categories: methods based on semantic distance, methods based on information content, methods based on properties of terms, methods based on ontology hierarchy, and hybrid methods. We summarize characteristics of each category, with emphasis on basic notions, advantages and disadvantages of these methods. Further, we extend our review to software tools implementing these methods and applications using these methods.
机译:在过去的十年中,高通量实验技术的进步使组学数据有了爆炸性的增长,而有效的组织,解释和交换这些数据需要生物学和生物医学研究领域中的标准词汇和受控词汇。本体作为领域特定知识组合的抽象描述系统,因此在计算生物学和生物信息学中受到越来越多的关注。特别地,许多依赖领域本体的应用程序要求对本体中术语之间的关系进行定量测量,这使得开发用于推导术语之间基于本体的语义相似性的计算方法必不可少。然而,利用各种可用的方法,如何为特定应用选择合适的方法成为一个问题。有了这种理解,我们将回顾大多数依靠本体来计算术语之间语义相似性的现有方法。我们将现有方法分为五类:基于语义距离的方法,基于信息内容的方法,基于术语属性的方法,基于本体层次结构的方法以及混合方法。我们总结了每个类别的特征,重点介绍了这些方法的基本概念,优点和缺点。此外,我们将审查范围扩展到实现这些方法的软件工具以及使用这些方法的应用程序。

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