Enhancement of Basket Trial Designs with Incorporation of a Bayesian Three-Outcome Decision-Making Framework
收藏DataCite Commons2024-04-23 更新2024-08-18 收录
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https://tandf.figshare.com/articles/dataset/Enhancement_of_Basket_Trial_Designs_with_Incorporation_of_a_Bayesian_Three-Outcome_Decision-Making_Framework/23866865
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With recent accelerated approvals of histology-agnostic novel agents, conducting basket trials that evaluate an investigational therapy on different histologies is gaining momentum, thanks to the underlying common biological anti-cancer mechanism of action. Statistical models are proposed to boost statistical efficiency by leveraging information across cohorts to harvest the shared response signal. However, limited research exists about establishing a quantitative decision-making framework for basket trials. Robustness of a dichotomized “Go/No-Go” decision may be suboptimal when an “inconclusive” decision is more appropriate. Accordingly, the three-outcome decision-making (3ODM) framework with an additional “Consider” zone has gained popularity, and we propose to incorporate 3ODM into basket trials for the benefit of robustness and flexibility, and for formal incorporation of between-cohort shared signal into 3ODM to improve its performance in basket trials. Our simulation study is the first to compare modeling of log odds ratio (on top of benchmark response rates, RRs) with modeling of RRs in most current basket trial designs, considering the potential drastic differences for reference and target RRs across cohorts. We used the exchangeability-nonexchangeability (EXNEX) model to evaluate operating characteristics of the EXNEX + 3ODM framework (with/without an interim analysis), although the proposed enhancement could be readily extended to different basket trial designs.
提供机构:
Taylor & Francis
创建时间:
2023-08-04



