A new method for measuring the semantic similarity on gene ontology

Ying Shen, Shaohong Zhang, H. Wong
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引用次数: 17

Abstract

Semantic similarity defined on Gene Ontology (GO) aims to provide the functional relationship between different biological processes, molecular functions, or cellular components. In this paper, a novel method, namely the Shortest Path (SP) algorithm, for measuring the semantic similarity on GO is proposed based on both the GO structure information and the term's property. The proposed algorithm searches for the shortest path that connects two terms and uses the sum of weights on the shortest path to compute the semantic similarity for GO terms. A method for evaluating the nonlinear correlation between two variables is also introduced for validation. Extensive experiments conducted on two public gene expression datasets demonstrate the overall superiority of SP method over the other state-of-the-art methods evaluated.
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一种测量基因本体语义相似度的新方法
基因本体(Gene Ontology, GO)定义的语义相似性旨在提供不同生物过程、分子功能或细胞成分之间的功能关系。本文提出了一种基于GO结构信息和术语性质的GO语义相似度度量的新方法——最短路径(SP)算法。该算法通过搜索连接两项的最短路径,利用最短路径上的权值和计算GO项的语义相似度。本文还介绍了一种评估两个变量之间非线性相关性的方法,以进行验证。在两个公共基因表达数据集上进行的大量实验表明,SP方法比其他最先进的评估方法具有总体优势。
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