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Updated: Jun 9, 2025

Author Spotlight: Innovative Techniques and Future Directions in Stroke Research
Published on: May 5, 2023
An Introduction to Bayesian Approaches to Trial Design and Statistics for Stroke Researchers
Johanna M Ospel1,2, Scott Brown3, Jessalyn K Holodinsky2,4,5
1Department of Diagnostic Imaging (J.M.O., S.B.C., M.D.H., M.G.), Foothills Medical Center, University of Calgary, AB, Canada.
Abstract:
While the majority of stroke researchers use frequentist statistics to analyze and present their data, Bayesian statistics are becoming more and more prevalent in stroke research. As opposed to frequentist approaches, which are based on the probability that data equal specific values given underlying unknown parameters, Bayesian approaches are based on the probability that parameters equal specific values given observed data and prior beliefs. The Bayesian paradigm allows researchers to update their beliefs with observed data to provide probabilistic interpretations of key parameters, for example, the probability that a treatment is effective. In this review, we outline the basic concepts of Bayesian statistics as they apply to stroke trials, compare them to the frequentist approach using exemplary data from a randomized trial, and explain how a Bayesian analysis is conducted and interpreted.
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