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运用三级元分析模型依赖效应量:结构方程建模方法。

Modeling dependent effect sizes with three-level meta-analyses: a structural equation modeling approach.

机构信息

National University of Singapore.

出版信息

Psychol Methods. 2014 Jun;19(2):211-29. doi: 10.1037/a0032968. Epub 2013 Jul 8.

Abstract

Meta-analysis is an indispensable tool used to synthesize research findings in the social, educational, medical, management, and behavioral sciences. Most meta-analytic models assume independence among effect sizes. However, effect sizes can be dependent for various reasons. For example, studies might report multiple effect sizes on the same construct, and effect sizes reported by participants from the same cultural group are likely to be more similar than those reported by other cultural groups. This article reviews the problems and common methods to handle dependent effect sizes. The objective of this article is to demonstrate how 3-level meta-analyses can be used to model dependent effect sizes. The advantages of the structural equation modeling approach over the multilevel approach with regard to conducting a 3-level meta-analysis are discussed. This article also seeks to extend the key concepts of Q statistics, I2, and R2 from 2-level meta-analyses to 3-level meta-analyses. The proposed procedures are implemented using the open source metaSEM package for the R statistical environment. Two real data sets are used to illustrate these procedures. New research directions related to 3-level meta-analyses are discussed.

摘要

元分析是一种不可或缺的工具,用于综合社会科学、教育科学、医学、管理学和行为科学领域的研究成果。大多数元分析模型假设效应大小之间是相互独立的。然而,由于各种原因,效应大小可能是相关的。例如,研究可能会报告同一构念的多个效应大小,而且来自同一文化群体的参与者报告的效应大小比来自其他文化群体的效应大小更相似。本文回顾了处理相关效应大小的问题和常见方法。本文的目的是展示如何使用 3 水平元分析来模拟相关的效应大小。本文讨论了结构方程模型方法相对于多层次方法在进行 3 水平元分析方面的优势。本文还试图将 Q 统计量、I2 和 R2 的关键概念从 2 水平元分析扩展到 3 水平元分析。所提出的程序是使用 R 统计环境中的开源 metaSEM 包实现的。使用两个真实数据集来说明这些程序。讨论了与 3 水平元分析相关的新研究方向。

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