Assurance for clinical trial design with normally distributed outcomes: Eliciting uncertainty about variances

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Abstract

The assurance method is growing in popularity in clinical trial planning. The method involves eliciting a prior distribution for the treatment effect, and then calculating the probability that a proposed trial will produce a “successful” outcome. For normally distributed observations, uncertainty about the variance of the normal distribution also needs to be accounted for, but there is little guidance in the literature on how to elicit a distribution for a variance parameter. We present a simple elicitation method, and illustrate how the elicited distribution is incorporated within an assurance calculation. We also consider multi-stage trials, where a decision to proceed with a larger trial will follow from the outcome of a smaller trial; we illustrate the role of the elicited distribution in assessing the information provided by a proposed smaller trial. Free software is available for implementing our methods.

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Alhussain, Z. A., & Oakley, J. E. (2020). Assurance for clinical trial design with normally distributed outcomes: Eliciting uncertainty about variances. Pharmaceutical Statistics, 19(6), 827–839. https://doi.org/10.1002/pst.2040

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