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Marginal Regression for Binary Longitudinal Data in Adaptive Clinical Trials

机译:适应性临床试验中二进制纵向数据的边际回归

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In an adaptive clinical trial research, it is common to use certain data-dependent design weights to assign individuals to treatments so that more study subjects are assigned to the better treatment. These design weights must also be used for consistent estimation of the treatment effects as well as the effects of the other prognostic factors. In practice, there are however situations where it may be necessary to collect binary responses repeatedly from an individual over a period of time and to obtain consistent estimates for the treatment effect as well as the effects of the other covariates in such a binary longitudinal set up. In this paper, we introduce a binary response-based longitudinal adaptive design for the allocation of individuals to a better treatment and propose a weighted generalized quasi-likelihood approach for the consistent and efficient estimation of the regression parameters including the treatment effects.
机译:在适应性临床试验研究中,通常使用某些依赖于数据的设计权重将个体分配给治疗,以便将更多的研究对象分配给更好的治疗。这些设计权重还必须用于一致地估计治疗效果以及其他预后因素的效果。然而,在实践中,在某些情况下,可能有必要在一段时间内从一个人重复收集二进制响应,并在这种二进制纵向设置中获得对治疗效果以及其他协变量的效果的一致估计。 。在本文中,我们介绍了一种基于二进制响应的纵向自适应设计,用于将个体分配给更好的治疗,并提出了一种加权广义拟似然方法,用于对包括治疗效果在内的回归参数进行一致且有效的估计。

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