4.5 Article

Random-effects models for meta-analytic structural equation modeling: review, issues, and illustrations

期刊

RESEARCH SYNTHESIS METHODS
卷 7, 期 2, 页码 140-155

出版社

WILEY
DOI: 10.1002/jrsm.1166

关键词

meta-analytic structural equation model; meta-analysis; structural equation model; random-effects model; R statistical platform

资金

  1. Academic Research Fund Tier 1 from the Ministry of Education, Singapore [FY2013-FRC5-002]
  2. University of Macau [MYRG031[Y1-L1]-FSH12-CSF]

向作者/读者索取更多资源

Meta-analytic structural equation modeling (MASEM) combines the techniques of meta-analysis and structural equation modeling for the purpose of synthesizing correlation or covariance matrices and fitting structural equation models on the pooled correlation or covariance matrix. Both fixed-effects and random-effects models can be defined in MASEM. Random-effects models are well known in conventional meta-analysis but are less studied in MASEM. The primary objective of this paper was to address issues related to random-effects models in MASEM. Specifically, we compared two different random-effects models in MASEM-correlation-based MASEM and parameter-based MASEM-and explored their strengths and limitations. Two examples were used to illustrate the similarities and differences between these models. We offered some practical guidelines for choosing between these two models. Future directions for research on random-effects models in MASEM were also discussed. Copyright (C) 2016 John Wiley & Sons, Ltd.

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