Literature DB >> 33362673

Dangers of the Defaults: A Tutorial on the Impact of Default Priors When Using Bayesian SEM With Small Samples.

Sanne C Smid1, Sonja D Winter2.   

Abstract

When Bayesian estimation is used to analyze Structural Equation Models (SEMs), prior distributions need to be specified for all parameters in the model. Many popular software programs offer default prior distributions, which is helpful for novel users and makes Bayesian SEM accessible for a broad audience. However, when the sample size is small, those prior distributions are not always suitable and can lead to untrustworthy results. In this tutorial, we provide a non-technical discussion of the risks associated with the use of default priors in small sample contexts. We discuss how default priors can unintentionally behave as highly informative priors when samples are small. Also, we demonstrate an online educational Shiny app, in which users can explore the impact of varying prior distributions and sample sizes on model results. We discuss how the Shiny app can be used in teaching; provide a reading list with literature on how to specify suitable prior distributions; and discuss guidelines on how to recognize (mis)behaving priors. It is our hope that this tutorial helps to spread awareness of the importance of specifying suitable priors when Bayesian SEM is used with small samples.
Copyright © 2020 Smid and Winter.

Entities:  

Keywords:  Bayesian SEM; Shiny app; default priors; informative priors; small sample size

Year:  2020        PMID: 33362673      PMCID: PMC7759471          DOI: 10.3389/fpsyg.2020.611963

Source DB:  PubMed          Journal:  Front Psychol        ISSN: 1664-1078


  10 in total

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2.  Evaluation of the Bayesian and Maximum Likelihood Approaches in Analyzing Structural Equation Models with Small Sample Sizes.

Authors:  Sik-Yum Lee; Xin-Yuan Song
Journal:  Multivariate Behav Res       Date:  2004-10-01       Impact factor: 5.923

3.  Bayesian Estimation for Item Factor Analysis Models with Sparse Categorical Indicators.

Authors:  Sierra A Bainter
Journal:  Multivariate Behav Res       Date:  2017-07-17       Impact factor: 5.923

4.  Estimation of the latent mediated effect with ordinal data using the limited-information and Bayesian full-information approaches.

Authors:  Jinsong Chen; Dake Zhang; Jaehwa Choi
Journal:  Behav Res Methods       Date:  2015-12

Review 5.  A systematic review of Bayesian articles in psychology: The last 25 years.

Authors:  Rens van de Schoot; Sonja D Winter; Oisín Ryan; Mariëlle Zondervan-Zwijnenburg; Sarah Depaoli
Journal:  Psychol Methods       Date:  2017-06

6.  A Comparison of ML, WLSMV, and Bayesian Methods for Multilevel Structural Equation Models in Small Samples: A Simulation Study.

Authors:  Jana Holtmann; Tobias Koch; Katharina Lochner; Michael Eid
Journal:  Multivariate Behav Res       Date:  2016-09-03       Impact factor: 5.923

7.  Prior sensitivity analysis in default Bayesian structural equation modeling.

Authors:  Sara van Erp; Joris Mulder; Daniel L Oberski
Journal:  Psychol Methods       Date:  2017-11-27

8.  Bayesian PTSD-Trajectory Analysis with Informed Priors Based on a Systematic Literature Search and Expert Elicitation.

Authors:  Rens van de Schoot; Marit Sijbrandij; Sarah Depaoli; Sonja D Winter; Miranda Olff; Nancy E van Loey
Journal:  Multivariate Behav Res       Date:  2018-01-11       Impact factor: 5.923

9.  Analyzing small data sets using Bayesian estimation: the case of posttraumatic stress symptoms following mechanical ventilation in burn survivors.

Authors:  Rens van de Schoot; Joris J Broere; Koen H Perryck; Mariëlle Zondervan-Zwijnenburg; Nancy E van Loey
Journal:  Eur J Psychotraumatol       Date:  2015-03-11

10.  Pathways from maternal depression to young adult offspring depression: an exploratory longitudinal mediation analysis.

Authors:  Artemis Koukounari; Argyris Stringaris; Barbara Maughan
Journal:  Int J Methods Psychiatr Res       Date:  2016-07-29       Impact factor: 4.035

  10 in total

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