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A method for combining p-values in meta-analysis by gamma distributions

机译:伽马分布在元分析中组合p值的方法

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摘要

Combining p-values from statistical tests across different studies is the most commonly used approach in meta-analysis for evolutionary biology. The most commonly used p-value combination methods mainly incorporate the z-transform tests (e.g., the un-weighted z-test and the weighted z-test) and the gamma-transform tests (e.g., the CZ method [Z. Chen, W. Yang, Q. Liu, J.Y. Yang, J. Li, and M.Q. Yang, A new statistical approach to combining p-values using gamma distribution and its application to genomewide association study, Bioinformatics 15 (2014), p. S3]). However, among these existing p-value combination methods, no method is uniformly most powerful in all situations [Chen et al. 2014]. In this paper, we propose a meta-analysis method based on the gamma distribution, MAGD, by pooling the p-values from independent studies. The newly proposed test, MAGD, allows for flexible accommodating of the different levels of heterogeneity of effect sizes across individual studies. The MAGD simultaneously retains all the characters of the z-transform tests and the gamma-transform tests. We also propose an easy-to-implement resampling approach for estimating the empirical p-values of MAGD for the finite sample size. Simulation studies and two data applications show that the proposed method MAGD is essentially as powerful as the z-transform tests (the gamma-transform tests) under the circumstance with the homogeneous (heterogeneous) effect sizes across studies.
机译:将P值与不同研究中的统计测试结合起来是进化生物学中最常用的荟萃分析方法。最常用的p值组合方法主要包括z变换试验(例如,未加权的z-test和加权z-test)和伽马变换测试(例如,CZ方法[Z. Zhen, W.杨,Q.刘,Jy Yang,J.Li和MQ杨,使用伽马分布将p值与基因组合研究,生物信息学15(2014)的应用相结合的新统计方法,p。S3]) 。然而,在这些现有的p值组合方法中,在所有情况下,没有方法是均匀的最强大[Chen等人。 2014]。在本文中,我们提出了一种基于伽马分布,MAGD的META分析方法,通过汇集来自独立研究的P值。新建的测试Magd允许在各个研究中允许柔性地容纳不同效果尺寸的异质性。 MAGD同时保留Z变换测试的所有特征和伽马变换测试。我们还提出了一种易于实施的重采样方法,用于估计MAGD的经验P值,用于有限样本尺寸。仿真研究和两个数据应用表明,所提出的方法MAGD基本上与跨越研究的均匀(异质)效应大小的情况下的Z变换试验(伽马变换试验)。

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