Comparing Methods for Multilevel Moderated Mediation: A Decomposed-first Strategy

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초록

The purpose of this study is to propose a decomposed-first strategy for multilevel moderated mediation and to compare the performance of three moderated mediation approaches in multilevel structural equation modeling. The following approaches were compared in simulations to test coefficients that were decomposed level by level: orthogonal partitioning with centering within cluster, random coefficient prediction, and latent moderated structural equations. The manipulated conditions for the simulation analysis were the analysis method, the number of groups, group size, and intraclass correlation. The results showed that, for samples consisting of a large number of groups, a large average group size and a large intraclass correlation, LMS had the strongest performance. This study is meaningful in that it produces interpretable coefficients by applying a decomposed-first strategy in multilevel moderated mediation and extends a basic moderated mediation model to include more specific research questions in multilevel structural equation modeling.

키워드

Multilevel moderated mediationdecomposed-first strategylatent moderated structural equationsrandom coefficient predictionorthogonal partitioning with centering within clusterSTRUCTURAL EQUATION MODELSMAXIMUM-LIKELIHOOD-ESTIMATIONSAMPLE-SIZESCHOOLLEVELVARIABLESFRAMEWORKISSUESPOWER
제목
Comparing Methods for Multilevel Moderated Mediation: A Decomposed-first Strategy
저자
Kim, SoyoungHong, Sehee
DOI
10.1080/10705511.2019.1683015
발행일
2020-09-02
유형
Article
저널명
Structural Equation Modeling
27
5
페이지
661 ~ 677