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Meta-Analysis as a Research Synthesis Methodology: Cause for Concern

机译:荟萃分析作为研究综合方法论:引起关注的原因

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The use of meta-analysis is growing in popularity. It is based on the fundamental notion of the effect size, and a critical assumption is that effect sizes based on different measures are directly comparable. In this article it is argued that the direct comparability of effect sizes across measures implies the invariance of the effect sizes across these measures. A model of standardized mean difference (SMD) effect size invariance is developed, based on multifacet generalizability theory, which shows that SMD effect size invariance requires certain validity invariance conditions to hold. One implication of these findings is that the direct comparability of SMD effect sizes based on different measurement procedures is an empirical matter requiring testing prior to conducting a meta-analysis. Findings are also discussed suggesting that violations of one of these conditions—universe score validity invariance—can bring about substantial differences across SMD effect sizes as a function of measurement procedure. These findings suggest the need for a more refined use of meta-analysis since meta-analytic results may be adversely impacted by the lack of direct comparability of effect sizes based on different measures.
机译:荟萃分析的使用正在日益普及。它基于效应大小的基本概念,一个关键的假设是基于不同度量的效应大小可以直接比较。在本文中,论证了跨措施的效应量的直接可比性暗示了跨这些措施的效应量的不变性。基于多面概化理论,建立了标准均值差(SMD)效应量不变性模型,表明SMD效应量不变性需要一定的有效性不变性条件来保持。这些发现的一个暗示是,基于不同测量程序的SMD效应大小的直接可比性是一项经验性问题,需要在进行荟萃分析之前进行测试。还讨论了发现,表明违反这些条件之一(宇宙分数有效性不变性)可能会导致SMD效应大小随测量程序而产生实质性差异。这些发现表明需要对荟萃分析进行更精细的使用,因为基于不同度量的效应量缺乏直接可比性可能会对荟萃分析结果产生不利影响。

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