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贝叶斯自适应随机对照试验中的协变量调整。

Covariate adjustment in Bayesian adaptive randomized controlled trials.

机构信息

Epidemiology and Biostatistics, McGill University, Montreal, Canada.

出版信息

Stat Methods Med Res. 2024 Mar;33(3):480-497. doi: 10.1177/09622802241227957. Epub 2024 Feb 7.

Abstract

In conventional randomized controlled trials, adjustment for baseline values of covariates known to be at least moderately associated with the outcome increases the power of the trial. Recent work has shown a particular benefit for more flexible frequentist designs, such as information adaptive and adaptive multi-arm designs. However, covariate adjustment has not been characterized within the more flexible Bayesian adaptive designs, despite their growing popularity. We focus on a subclass of these which allow for early stopping at an interim analysis given evidence of treatment superiority. We consider both collapsible and non-collapsible estimands and show how to obtain posterior samples of marginal estimands from adjusted analyses. We describe several estimands for three common outcome types. We perform a simulation study to assess the impact of covariate adjustment using a variety of adjustment models in several different scenarios. This is followed by a real-world application of the compared approaches to a COVID-19 trial with a binary endpoint. For all scenarios, it is shown that covariate adjustment increases power and the probability of stopping the trials early, and decreases the expected sample sizes as compared to unadjusted analyses.

摘要

在传统的随机对照试验中,对协变量的基线值进行调整,这些协变量已知至少与结果中度相关,可以提高试验的功效。最近的研究表明,对于更灵活的频率主义设计,如信息自适应和自适应多臂设计,这种调整特别有益。然而,尽管贝叶斯自适应设计越来越受欢迎,但在更灵活的设计中尚未对协变量调整进行描述。我们专注于允许在中期分析中根据治疗优势的证据提前停止的这些设计的子类。我们考虑了可折叠和不可折叠的估计量,并展示了如何从调整后的分析中获得边缘估计量的后验样本。我们描述了三种常见结局类型的几种估计量。我们进行了一项模拟研究,以评估在几种不同情况下使用各种调整模型进行协变量调整的影响。接下来是对具有二分类结局的 COVID-19 试验的比较方法的实际应用。在所有情况下,都表明与未调整的分析相比,协变量调整增加了功效和提前停止试验的概率,减少了预期的样本量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/41d3/10981207/866f34b245b9/10.1177_09622802241227957-fig1.jpg

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