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Mediation Analysis in Bayesian Extended Redundancy Analysis with Mixed Outcome Variablesopen access

Authors
Choi, Ji YehKyung, MinjungPark, Ju-Hyun
Issue Date
Mar-2025
Publisher
Cambridge University Press
Keywords
Bayesian statistics; Extended redundancy analysis; mediation analysis; multivariate regression with mixed types of variables
Citation
Psychometrika, v.90, no.1, pp 251 - 279
Pages
29
Indexed
SCIE
SSCI
SCOPUS
Journal Title
Psychometrika
Volume
90
Number
1
Start Page
251
End Page
279
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/58619
DOI
10.1017/psy.2024.13
ISSN
0033-3123
1860-0980
Abstract
Extended redundancy analysis (ERA) is a statistical approach to component-based multivariate regression modeling that explores interrelationships among multiple sets of while incorporating regression with a data-reduction technique. The extant models that utilize ERA have assumed the outcome variables with the same data type. Also, ERA models focused on estimating direct pathways only without explicitly addressing mediation effects. In this paper, ERA is extended to handle multiple mediators and mixed types of outcome variables by adopting a Bayesian framework, taking into account correlation structure among all of the outcome variables. The proposed method develops an algorithm that derives the joint posterior distribution of parameters using a Markov chain Monte Carlo algorithm. Simulations and an empirical dataset are provided to illustrate the usefulness of the proposed method.
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