4.4 Article

Bayesian Mediation Analysis with Power Prior Distributions

Journal

MULTIVARIATE BEHAVIORAL RESEARCH
Volume 57, Issue 6, Pages 978-993

Publisher

ROUTLEDGE JOURNALS, TAYLOR & FRANCIS LTD
DOI: 10.1080/00273171.2021.1935202

Keywords

Bayesian; mediation analysis; power priors; informative priors; historical data

Funding

  1. European Commission Horizon 2020 research and innovation program, H2020 Marie Sklodowska-Curie Actions [792119]
  2. Marie Curie Actions (MSCA) [792119] Funding Source: Marie Curie Actions (MSCA)

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Bayesian methods are often suggested for small sample research, but they require informative priors for better performance. This paper proposes an objective procedure for creating informative priors for mediation analysis based on historical data, leading to increased precision and power when data are exchangeable, without inducing bias when data are not exchangeable.
Bayesian methods are often suggested as a solution for issues encountered in small sample research, however, Bayesian methods often require informative priors to outperform classical methods in these settings. Specifying accurate priors with respect to the true value of the parameter of interest is challenging and inaccurate informative priors can have detrimental effects on conclusions from the statistical analysis. This paper proposes an objective procedure for creating informative priors for mediation analysis based on a historical data set; the only requirements for implementing the procedure are that the data from the current study constitute a representative sample from the population of interest, and that the historical and current data sets contain measures of the same covariates and independent variable, mediator, and outcome. The simulation study findings show that the proposed method leads to appropriate amount of borrowing from the historical data set, which leads to increases in precision and power when the historical data and current data are exchangeable, and does not induce bias when the historical and current studies are not exchangeable. The proposed method is illustrated using data from the project PROsetta Stone, and we provide rstan code for implementing the proposed method.

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