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A Fast, Flexible Simulation Framework for Bayesian Adaptive Designs-The R Package BATSS
Dominique-Laurent Couturier1, Rainer Puhr2, Stephane Heritier2
1MRC Biostatistics Unit, University of Cambridge, Cambridge, UK.
A new R software package, Bayesian Adaptive Trials Simulator Software (BATSS), enables fast simulation of Bayesian adaptive designs for clinical trials, overcoming previous software limitations for statisticians.
Area of Science:
- Biostatistics
- Clinical Trial Design
- Computational Statistics
Background:
- Bayesian adaptive designs offer flexibility in clinical trials but have lacked accessible software tools for statisticians.
- Efficient simulation is crucial for evaluating the operating characteristics of complex adaptive trial designs.
Purpose of the Study:
- To introduce the Bayesian Adaptive Trials Simulator Software (BATSS) package for the R statistical environment.
- To provide a flexible and efficient tool for simulating Bayesian adaptive designs in clinical trials.
Main Methods:
- Development of the BATSS software package in R.
- Simulation of Bayesian adaptive designs with various primary outcome distributions (normal, binary, Poisson, negative binomial).
- Incorporation of common adaptations: stopping for efficacy/futility and Bayesian response-adaptive randomization.
Main Results:
- BATSS facilitates the definition and evaluation of operating characteristics for diverse Bayesian adaptive designs.
- The package supports common adaptive strategies, including early stopping and response-adaptive randomization.
- Features include (Integrated Nested) Laplace approximations, parallel processing, and covariate adjustment.
Conclusions:
- The BATSS package significantly enhances the practical application of Bayesian adaptive designs in clinical trials.
- This software empowers statisticians to more readily design and analyze complex adaptive trials.
- BATSS promotes the use of advanced adaptive methodologies through accessible simulation capabilities.
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