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A dynamic power prior for borrowing historical data in noninferiority trials with binary endpoint

机译:在使用二进制端点借用非事实体试验中的历史数据之前的动态电力

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Summary Traditionally, noninferiority hypotheses have been tested using a frequentist method with a fixed margin. Given that information for the control group is often available from previous studies, it is interesting to consider a Bayesian approach in which information is “borrowed” for the control group to improve efficiency. However, construction of an appropriate informative prior can be challenging. In this paper, we consider a hybrid Bayesian approach for testing noninferiority hypotheses in studies with a binary endpoint. To account for heterogeneity between the historical information and the current trial for the control group, a dynamic P value–based power prior parameter is proposed to adjust the amount of information borrowed from the historical data. This approach extends the simple test‐then‐pool method to allow a continuous discounting power parameter. An adjusted α level is also proposed to better control the type I error. Simulations are conducted to investigate the performance of the proposed method and to make comparisons with other methods including test‐then‐pool and hierarchical modeling. The methods are illustrated with data from vaccine clinical trials.
机译:发明内容传统上,使用具有固定边缘的频率方法测试了非事实体假设。鉴于对照组的信息通常可以从以前的研究中提供,需要考虑一种贝叶斯方法,其中为控制组“借用”以提高效率。但是,建设适当的信息性前方可能具有挑战性。在本文中,我们考虑了一种混合贝叶斯方法,用于测试与二进制端点的研究中的非流体假设。为了考虑历史信息与对照组的当前试验之间的异质性,提出了一种基于动态的基于P值的功率先前参数,以调整从历史数据借用的信息量。该方法扩展了简单的测试然后池方法,以允许连续折扣功率参数。还提出了调整后的α水平以更好地控制I误差。进行仿真以调查所提出的方法的性能,并与其他方法进行比较,包括测试对池和层级建模。该方法用来自疫苗临床试验的数据进行说明。

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