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1.
Psychol Methods ; 28(3): 558-579, 2023 Jun.
Article in English | MEDLINE | ID: mdl-35298215

ABSTRACT

The last 25 years have shown a steady increase in attention for the Bayes factor as a tool for hypothesis evaluation and model selection. The present review highlights the potential of the Bayes factor in psychological research. We discuss six types of applications: Bayesian evaluation of point null, interval, and informative hypotheses, Bayesian evidence synthesis, Bayesian variable selection and model averaging, and Bayesian evaluation of cognitive models. We elaborate what each application entails, give illustrative examples, and provide an overview of key references and software with links to other applications. The article is concluded with a discussion of the opportunities and pitfalls of Bayes factor applications and a sketch of corresponding future research lines. (PsycInfo Database Record (c) 2023 APA, all rights reserved).


Subject(s)
Bayes Theorem , Behavioral Research , Psychology , Humans , Behavioral Research/methods , Psychology/methods , Software , Research Design
2.
Front Psychol ; 13: 947768, 2022.
Article in English | MEDLINE | ID: mdl-36483714

ABSTRACT

Researchers can express their expectations with respect to the group means in an ANOVA model through equality and order constrained hypotheses. This paper introduces the R package SSDbain, which can be used to calculate the sample size required to evaluate (informative) hypotheses using the Approximate Adjusted Fractional Bayes Factor (AAFBF) for one-way ANOVA models as implemented in the R package bain. The sample size is determined such that the probability that the Bayes factor is larger than a threshold value is at least η when either of the hypotheses under consideration is true. The Bayesian ANOVA, Bayesian Welch's ANOVA, and Bayesian robust ANOVA are available. Using the R package SSDbain and/or the tables provided in this paper, researchers in the social and behavioral sciences can easily plan the sample size if they intend to use a Bayesian ANOVA.

3.
Behav Res Methods ; 53(1): 139-152, 2021 02.
Article in English | MEDLINE | ID: mdl-32632740

ABSTRACT

When two independent means µ1 and µ2 are compared, H0 : µ1 = µ2, H1 : µ1≠µ2, and H2 : µ1 > µ2 are the hypotheses of interest. This paper introduces the R package SSDbain, which can be used to determine the sample size needed to evaluate these hypotheses using the approximate adjusted fractional Bayes factor (AAFBF) implemented in the R package bain. Both the Bayesian t test and the Bayesian Welch's test are available in this R package. The sample size required will be calculated such that the probability that the Bayes factor is larger than a threshold value is at least η if either the null or alternative hypothesis is true. Using the R package SSDbain and/or the tables provided in this paper, psychological researchers can easily determine the required sample size for their experiments.


Subject(s)
Research Design , Bayes Theorem , Humans , Probability , Sample Size
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