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An algorithm for computing the semantic similarity among terminologies in gene ontology

机译:一种计算基因本体中术语间语义相似度的算法

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The computation of semantic similarity of terminologies in gene ontology is an important application of gene ontology. Moreover, it is an important approach for biologists to deal with the semantic heterogeneity of biological data sets. Existing approaches in this field are based on semantic distance or information quantity. The author proposes a comprehensive approach where the similarity is first computed on the terminological level, inducing density-constraining and depth-constraining variables based on the microscopic structure (density and depth of the nodes) of the gene ontology nodes, then based on node properties and inference-based instances, the comprehensive semantic similarity is computed. From the result of comparison with the Resnik method, the ZZL method, Lin method and Combine method, the above proposed method proves to be favorable.
机译:基因本体中术语语义相似度的计算是基因本体的重要应用。而且,这是生物学家应对生物学数据集语义异质性的重要途径。该领域中的现有方法是基于语义距离或信息量的。作者提出了一种综合的方法,其中首先在术语级别上计算相似度,然后根据基因本体节点的微观结构(节点的密度和深度)来诱导密度约束和深度约束变量,然后基于节点属性在基于推理的实例中,计算出全面的语义相似度。通过与Resnik方法,ZZL方法,Lin方法和Combin方法的比较结果,证明上述方法是有利的。

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