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METAINTER: meta-analysis of multiple regression models in genome-wide association studies

机译:METAINTER:全基因组关联研究中多元回归模型的荟萃分析

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Motivation: Meta-analysis of summary statistics is an essential approach to guarantee the success of genome-wide association studies (GWAS). Application of the fixed or random effects model to single-marker association tests is a standard practice. More complex methods of meta-analysis involving multiple parameters have not been used frequently, a gap that could be explained by the lack of a respective meta-analysis pipeline. Meta-analysis based on combining p-values can be applied to any association test. However, to be powerful, meta-analysis methods for high-dimensional models should incorporate additional information such as study-specific properties of parameter estimates, their effect directions, standard errors and covariance structure.
机译:动机:汇总统计信息的荟萃分析是保证全基因组关联研究(GWAS)成功的重要方法。将固定或随机效应模型应用于单标记关联测试是一种标准做法。涉及多个参数的更复杂的荟萃分析方法并未得到经常使用,这可以通过缺乏相应的荟萃分析流程来解释。基于组合p值的荟萃分析可以应用于任何关联测试。但是,要获得强大的功能,用于高维模型的荟萃分析方法应结合其他信息,例如参数估计的研究特定属性,其作用方向,标准误差和协方差结构。

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