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Comparison of Two Meta-Analysis Methods: Inverse-Variance-Weighted Average and Weighted Sum of Z-Scores

机译:两种荟萃分析方法的比较:方差加权平均和Z分数的加权和

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The meta-analysis has become a widely used tool for many applications in bioinformatics, including genome-wide association studies. A commonly used approach for meta-analysis is the fixed effects model approach, for which there are two popular methods: the inverse variance-weighted average method and weighted sum of z-scores method. Although previous studies have shown that the two methods perform similarly, their characteristics and their relationship have not been thoroughly investigated. In this paper, we investigate the optimal characteristics of the two methods and show the connection between the two methods. We demonstrate that the each method is optimized for a unique goal, which gives us insight into the optimal weights for the weighted sum of z-scores method. We examine the connection between the two methods both analytically and empirically and show that their resulting statistics become equivalent under certain assumptions. Finally, we apply both methods to the Wellcome Trust Case Control Consortium data and demonstrate that the two methods can give distinct results in certain study designs.
机译:荟萃分析已成为许多生物信息学应用的广泛使用的工具,包括全基因组关联研究。常用的荟萃分析方法是固定效应模型方法,其流行的方法有两种:逆方差加权平均法和z分数加权和法。尽管以前的研究表明这两种方法的性能相似,但是它们的特性和它们之间的关系尚未得到彻底研究。在本文中,我们研究了这两种方法的最佳特性,并展示了这两种方法之间的联系。我们证明了每种方法都针对一个独特的目标进行了优化,这使我们深入了解了z分数方法的加权总和的最佳权重。我们通过分析和经验检验了这两种方法之间的联系,并表明在某些假设下,它们得出的统计结果是等效的。最后,我们将这两种方法应用于惠康信任案例控制协会数据,并证明这两种方法在某些研究设计中可以给出不同的结果。

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