重复测量数据的多元贝叶斯动态借用及其在开放标签扩展研究中的应用。

IF 1.8 3区 生物学 Q4 MATHEMATICAL & COMPUTATIONAL BIOLOGY
Benjamin F. Hartley, Matthew A. Psioda, Adrian P. Mander
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引用次数: 0

摘要

借用分析在临床试验中越来越重要。提出了一种在多元动态借贷中使用鲁棒混合先验的方法。该方法的动机是希望在随机临床试验之后,通过动态地结合长期外部对照组的先验信念,对单个主动臂开放标签扩展研究的连续终点进行因果有效的长期治疗效果估计。本文提出的方法是一种基于多元正态似然函数的多元汇总指标估计的贝叶斯动态借用分析方法,适用于各种参数模型,我们描述了其中的一些。对于一个假设的估计策略,也就是说,如果事件没有发生,对于导致丢失数据的交互事件,与纳入先验信念的估计有重要的联系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Multivariate Bayesian Dynamic Borrowing for Repeated Measures Data With Application to External Control Arms in Open-Label Extension Studies

Multivariate Bayesian Dynamic Borrowing for Repeated Measures Data With Application to External Control Arms in Open-Label Extension Studies

Borrowing analyses are increasingly important in clinical trials. We develop a method for using robust mixture priors in multivariate dynamic borrowing. The method was motivated by a desire to produce causally valid, long-term treatment effect estimates of a continuous endpoint from a single active-arm open-label extension study following a randomized clinical trial by dynamically incorporating prior beliefs from a long-term external control arm. The proposed method is a generally applicable Bayesian dynamic borrowing analysis for estimates of multivariate summary metrics based on a multivariate normal likelihood function for various parameter models, some of which we describe. There are important connections to estimation incorporating a prior belief for a hypothetical estimand strategy, that is, had the event not occurred, for intercurrent events which lead to missing data.

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来源期刊
Biometrical Journal
Biometrical Journal 生物-数学与计算生物学
CiteScore
3.20
自引率
5.90%
发文量
119
审稿时长
6-12 weeks
期刊介绍: Biometrical Journal publishes papers on statistical methods and their applications in life sciences including medicine, environmental sciences and agriculture. Methodological developments should be motivated by an interesting and relevant problem from these areas. Ideally the manuscript should include a description of the problem and a section detailing the application of the new methodology to the problem. Case studies, review articles and letters to the editors are also welcome. Papers containing only extensive mathematical theory are not suitable for publication in Biometrical Journal.
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