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Sample size and robust marginal methods for cluster-randomized trials with censored event times

机译:用于群体随机试验的样本大小和强大的边际方法,具有审查的事件时间

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摘要

In cluster-randomized trials, intervention effects are often formulated by specifying marginal models, fitting them under a working independence assumption, and using robust variance estimates to address the association in the responses within clusters. We develop sample size criteria within this framework, with analyses based on semiparametric Cox regression models fitted with event times subject to right censoring. At the design stage, copula models are specified to enable derivation of the asymptotic variance of estimators from a marginal Cox regression model and to compute the number of clusters necessary to satisfy power requirements. Simulation studies demonstrate the validity of the sample size formula in finite samples for a range of cluster sizes, censoring rates, and degrees of within-cluster association among event times. The power and relative efficiency implications of copula misspecification is studied, as well as the effect of within-cluster dependence in the censoring times. Sample size criteria and other design issues are also addressed for the setting where the event status is only ascertained at periodic assessments and times are interval censored. Copyright (C) 2014 John Wiley & Sons, Ltd.
机译:在集群随机试验中,通常通过指定边际模型来制定干预效果,在工作独立假设下拟合它们,并使用鲁棒方差估计来解决群集内的响应中的关联。我们在本框架内开发示例大小标准,基于Semiparametric Cox回归模型的分析,该模型适用于右审查的事件时间。在设计阶段,规定了Copula模型,以使估算器的渐近方差能够从边缘Cox回归模型推导,并计算满足电源要求所需的集群数量。仿真研究证明了在事件时间之间有限样本中的样本大小公式的有效性。研究了Copula误解的功率和相对效率影响,以及在群体依赖于审查时间内的群体依赖的影响。对于仅在周期性评估的情况下,仅确定事件状态的设置,还针对示例规范标准和其他设计问题解决了截留状态。版权所有(c)2014 John Wiley&Sons,Ltd。

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