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A New Measure Based on Gene Ontology for Semantic Similarity of Genes

机译:基于基因本体的基因语义相似度新度量

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In this paper, we propose a novel method to measure the semantic similarity between genes. The key principle of our method relies on both path length between genesȁ9; annotation terms in the Gene Ontology and depth of their annotation termsȁ9; common ancestor node in the Gene Ontology. Our method applies an exponential transfer function which includes path length and depth as its two parameters to get the similarity of two annotation terms. We compute the arithmetic mean to get the similarity of genes. This measure ensures that the semantic similarity decreases with distance and increases with depth. A performance study with a set of genes from Saccharomyces Genome Database (SGD) has demonstrated that our method outperforms the previous leading measures in certain cases. We also analyzed several pathways from SGD and the clustering results showed that our method is quite competitive.
机译:在本文中,我们提出了一种新的方法来测量基因之间的语义相似性。我们方法的关键原理依赖于基因之间的两个路径长度length 9;基因本体中的注释术语及其注释术语的深度ȁ9;基因本体论中的共同祖先节点。我们的方法应用了指数传递函数,该函数将路径长度和深度作为其两个参数,以获取两个注释项的相似性。我们计算算术平均值以获得基因的相似性。该措施确保了语义相似性随距离而减小,而随深度而增加。对来自酿酒酵母基因组数据库(SGD)的一组基因进行的性能研究表明,在某些情况下,我们的方法优于以前的领先方法。我们还分析了SGD的几种途径,聚类结果表明我们的方法具有相当的竞争力。

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