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A model-based approach for simulating adaptive clinical studies with surrogate endpoints used for interim decision-making

机译:一种基于模型的方法用于模拟具有临时终点的替代终点的自适应临床研究

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摘要

In clinical trials, when exploring multiple dose groups to establish efficacy and safety on one or more selected doses, adaptive designs with interim dose selection are often used for dropping less effective dose groups. When it takes a long time to observe primary outcomes, utilizing information on a surrogate endpoint available at an earlier interim may be preferred for selecting which dose to continue. We propose a Bayesian model-based approach where historical data can be leveraged to incorporate a correlation model for investigating the design's operating characteristics. Simulation studies were conducted and the method can be readily applied for power and sample size calculations.
机译:在临床试验中,当探索多个剂量组以建立一个或多个所选剂量的疗效和安全性时,具有临时剂量选择的适应性设计通常用于降低无效的剂量组。当需要较长时间观察主要结果时,最好选择较早使用的替代终点信息,以选择继续服用的剂量。我们提出了一种基于贝叶斯模型的方法,其中可以利用历史数据来结合相关模型来调查设计的操作特性。进行了仿真研究,该方法可轻松用于功效和样本大小计算。

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