Literature DB >> 26363769

Causal mediation analysis with a latent mediator.

Jeffrey M Albert1, Cuiyu Geng1, Suchitra Nelson2.   

Abstract

Health researchers are often interested in assessing the direct effect of a treatment or exposure on an outcome variable, as well as its indirect (or mediation) effect through an intermediate variable (or mediator). For an outcome following a nonlinear model, the mediation formula may be used to estimate causally interpretable mediation effects. This method, like others, assumes that the mediator is observed. However, as is common in structural equations modeling, we may wish to consider a latent (unobserved) mediator. We follow a potential outcomes framework and assume a generalized structural equations model (GSEM). We provide maximum-likelihood estimation of GSEM parameters using an approximate Monte Carlo EM algorithm, coupled with a mediation formula approach to estimate natural direct and indirect effects. The method relies on an untestable sequential ignorability assumption; we assess robustness to this assumption by adapting a recently proposed method for sensitivity analysis. Simulation studies show good properties of the proposed estimators in plausible scenarios. Our method is applied to a study of the effect of mother education on occurrence of adolescent dental caries, in which we examine possible mediation through latent oral health behavior.
© 2015 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim.

Entities:  

Keywords:  Factor analysis; Measurement error; Mediation formula; Monte Carlo EM algorithm; Structural equations model

Mesh:

Year:  2015        PMID: 26363769      PMCID: PMC5745043          DOI: 10.1002/bimj.201400124

Source DB:  PubMed          Journal:  Biom J        ISSN: 0323-3847            Impact factor:   2.207


  18 in total

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6.  Associations Between Patterns of Alcohol Use and Viral Load Suppression Amongst Women Living with HIV in South Africa.

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