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Combining Gene Annotations and Gene Expression Data in Model-Based Clustering: Weighted Method

机译:基于模型的聚类中基因注释和基因表达数据的组合:加权方法

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It has been increasingly recognized that incorporating prior knowledge into cluster analysis can result in more reliable and meaningful clusters. In contrast to the standard modelbased clustering with a global mixture model, which does not use any prior information, a stratified mixture model was recently proposed to incorporate gene functions or biological pathways as priors in model-based clustering of gene expression profiles: various gene functional groups form the strata in a stratified mixture model. Albeit useful, the stratified method may be less efficient than the global analysis if the strata are non-informative to clustering. We propose a weighted method that aims to strike a balance between a stratified analysis and a global analysis: it weights between the clustering results of the stratified analysis and that of the global analysis; the weight is determined by data. More generally, the weighted method can take advantage of the hierarchical structure of most existing gene functional annotation systems, such as MIPS and Gene Ontology (GO), and facilitate choosing appropriate gene functional groups as priors. We use simulated data and real data to demonstrate the feasibility and advantages of the proposed method.
机译:人们越来越认识到,将先验知识纳入聚类分析可以产生更可靠和有意义的聚类。与不使用任何先验信息的具有全局混合物模型的基于标准模型的聚类相反,最近提出了一种分层混合物模型,以将基因功能或生物学途径作为先验纳入基因表达谱的基于模型的聚类中:各种基因功能组在分层混合模型中形成分层。尽管有用,但如果分层对聚类没有帮助,则分层方法可能不如全局分析有效。我们提出了一种加权方法,旨在在分层分析和全局分析之间取得平衡:在分层分析的聚类结果与全局分析的聚类结果之间进行加权;权重由数据决定。更一般而言,加权方法可以利用大多数现有的基因功能注释系统(例如MIPS和基因本体论(GO))的层次结构,并有助于优先选择合适的基因功能组。我们使用模拟数据和实际数据来证明该方法的可行性和优势。

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