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Robust exchangeability designs for early phase clinical trials with multiple strata

机译:稳健的可交换性设计,适用于多层次的早期临床试验

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Clinical trials with multiple strata are increasingly used in drug development. They may sometimes be the only option to study a new treatment, for example in small populations and rare diseases. In early phase trials, where data are often sparse, good statistical inference and subsequent decision-making can be challenging. Inferences from simple pooling or stratification are known to be inferior to hierarchical modeling methods, which build on exchangeable strata parameters and allow borrowing information across strata. However, the standard exchangeability (EX) assumption bears the risk of too much shrinkage and excessive borrowing for extreme strata. We propose the exchangeability-nonexchangeability (EXNEX) approach as a robust mixture extension of the standard EX approach. It allows each stratum-specific parameter to be exchangeable with other similar strata parameters or nonexchangeable with any of them. While EXNEX computations can be performed easily with standard Bayesian software, model specifications and prior distributions are more demanding and require a good understanding of the context. Two case studies from phases I and II (with three and four strata) show promising results for EXNEX. Data scenarios reveal tempered degrees of borrowing for extreme strata, and frequentist operating characteristics perform well for estimation (bias, mean-squared error) and testing (less type-I error inflation). Copyright (c) 2015 John Wiley & Sons, Ltd.
机译:在药物开发中越来越多地使用具有多个层次的临床试验。有时,它们可能是研究一种新疗法的唯一选择,例如在人口少和罕见疾病中。在数据通常很少的早期试验中,良好的统计推断和后续决策可能具有挑战性。已知简单合并或分层的推论不如分层建模方法,后者基于可交换的层参数并允许跨层借用信息。但是,标准可交换性(EX)假设承担着过度收缩和极端借贷的风险。我们建议将可交换性-不可交换性(EXNEX)方法作为标准EX方法的可靠混合物扩展。它允许每个特定于层的参数可与其他类似的层参数互换或不可与任何它们互换。尽管可以使用标准贝叶斯软件轻松执行EXNEX计算,但模型规格和先验分布要求更高,并且需要对上下文有很好的了解。来自第一阶段和第二阶段(具有三个和四个层次)的两个案例研究显示,EXNEX的结果令人鼓舞。数据场景揭示了极端层的借用程度有所降低,并且频繁出现的操作特性在估计(偏差,均方误差)和测试(I型误差膨胀较小)方面表现良好。版权所有(c)2015 John Wiley&Sons,Ltd.

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