Bayesian analysis of factorial designs
| Authors |
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| Publication date | 06-2017 |
| Journal | Psychological Methods |
| Volume | Issue number | 22 | 2 |
| Pages (from-to) | 304-321 |
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| Abstract |
This article provides a Bayes factor approach to multiway analysis of variance (ANOVA) that allows researchers to state graded evidence for effects or invariances as determined by the data. ANOVA is conceptualized as a hierarchical model where levels are clustered within factors. The development is comprehensive in that it includes Bayes factors for fixed and random effects and for within-subjects, between-subjects, and mixed designs. Different model construction and comparison strategies are discussed, and an example is provided. We show how Bayes factors may be computed with BayesFactor package in R and with the JASP statistical package. |
| Document type | Article |
| Language | English |
| Published at |
https://doi.org/10.1037/met0000057
(Final published version)
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