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Informed Bayesian t-Tests
by
Gronau, Quentin F.
, Wagenmakers, Eric-Jan
, Ly, Alexander
in
Bayes factor
/ Bayesian analysis
/ Computation
/ Elicitation
/ Informed hypothesis test
/ Objectives
/ Popularity
/ Prior elicitation
/ Regression analysis
/ Specification
/ Statistical methods
/ STATISTICAL PRACTICE
/ Statistics
/ Student's t-test
/ Subjectivity
/ Tests
2020
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Informed Bayesian t-Tests
by
Gronau, Quentin F.
, Wagenmakers, Eric-Jan
, Ly, Alexander
in
Bayes factor
/ Bayesian analysis
/ Computation
/ Elicitation
/ Informed hypothesis test
/ Objectives
/ Popularity
/ Prior elicitation
/ Regression analysis
/ Specification
/ Statistical methods
/ STATISTICAL PRACTICE
/ Statistics
/ Student's t-test
/ Subjectivity
/ Tests
2020
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Do you wish to request the book?
Informed Bayesian t-Tests
by
Gronau, Quentin F.
, Wagenmakers, Eric-Jan
, Ly, Alexander
in
Bayes factor
/ Bayesian analysis
/ Computation
/ Elicitation
/ Informed hypothesis test
/ Objectives
/ Popularity
/ Prior elicitation
/ Regression analysis
/ Specification
/ Statistical methods
/ STATISTICAL PRACTICE
/ Statistics
/ Student's t-test
/ Subjectivity
/ Tests
2020
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Journal Article
Informed Bayesian t-Tests
2020
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Overview
Across the empirical sciences, few statistical procedures rival the popularity of the frequentist
-test. In contrast, the Bayesian versions of the
-test have languished in obscurity. In recent years, however, the theoretical and practical advantages of the Bayesian
-test have become increasingly apparent and various Bayesian t-tests have been proposed, both objective ones (based on general desiderata) and subjective ones (based on expert knowledge). Here, we propose a flexible t-prior for standardized effect size that allows computation of the Bayes factor by evaluating a single numerical integral. This specification contains previous objective and subjective t-test Bayes factors as special cases. Furthermore, we propose two measures for informed prior distributions that quantify the departure from the objective Bayes factor desiderata of predictive matching and information consistency. We illustrate the use of informed prior distributions based on an expert prior elicitation effort.
Supplementary materials
for this article are available online.
Publisher
Taylor & Francis,Taylor & Francis, Ltd,American Statistical Association
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