A Primer on Bayesian Model-Averaged Meta-Analysis

被引:55
作者
Gronau, Quentin F. [1 ]
Heck, Daniel W. [2 ]
Berkhout, Sophie W. [1 ]
Haaf, Julia M. [1 ]
Wagenmakers, Eric-Jan [1 ]
机构
[1] Univ Amsterdam, Dept Psychol, Amsterdam, Netherlands
[2] Philipps Univ Marburg, Dept Psychol, Marburg, Germany
关键词
Bayes factor; hypothesis test; posterior probability; evidence synthesis; open materials; REGISTERED REPLICATION REPORT; TESTS;
D O I
10.1177/25152459211031256
中图分类号
B84 [心理学];
学科分类号
04 ; 0402 ;
摘要
Meta-analysis is the predominant approach for quantitatively synthesizing a set of studies. If the studies themselves are of high quality, meta-analysis can provide valuable insights into the current scientific state of knowledge about a particular phenomenon. In psychological science, the most common approach is to conduct frequentist meta-analysis. In this primer, we discuss an alternative method, Bayesian model-averaged meta-analysis. This procedure combines the results of four Bayesian meta-analysis models: (a) fixed-effect null hypothesis, (b) fixed-effect alternative hypothesis, (c) random-effects null hypothesis, and (d) random-effects alternative hypothesis. These models are combined according to their plausibilities given the observed data to address the two key questions "Is the overall effect nonzero?" and "Is there between-study variability in effect size?" Bayesian model-averaged meta-analysis therefore avoids the need to select either a fixed-effect or random-effects model and instead takes into account model uncertainty in a principled manner.
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页数:19
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