Incorporating historic information to further improve power when conducting Bayesian information borrowing in basket trials
Libby Daniells, Pavel Mozgunov, Helen Barnett, Alun Bedding, Thomas Jaki

TL;DR
This paper introduces new Bayesian methods that combine information from different patient groups and historical data to improve the accuracy of treatment effect estimates in basket trials.
Contribution
The novel contribution is the integration of historical data with Bayesian information borrowing between baskets in a trial, enhancing precision and power.
Findings
Incorporating historical data can significantly improve the precision and power of treatment effect estimates when the data is homogeneous.
Some methods showed an increase in type I error rate when data sources were heterogeneous.
Using a power prior in the EXNEX model increases power and precision without inflating error rates.
Abstract
In basket trials a single therapeutic treatment is tested on several patient populations simultaneously, each of which forming a basket, where patients across all baskets on the trial share a common genetic aberration. These trials allow testing of treatments on small groups of patients, however, limited basket sample sizes can result in inadequate precision and power of estimates. It is well known that Bayesian information borrowing models such as the exchangeability-nonexchangeability (EXNEX) model can be implemented to tackle such a problem, drawing on information from one basket when making inference in another. An alternative approach to improve power of estimates, is to incorporate any historical or external information available. This paper considers models that amalgamate both forms of information borrowing, allowing borrowing between baskets in the ongoing trial whilst also…
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Taxonomy
TopicsSports Analytics and Performance · Statistical Methods in Clinical Trials · Statistics Education and Methodologies
