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A comparison of imputation strategies in cluster randomized trials with missing binary outcomes

机译:缺少二元结果的整群随机试验中估算策略的比较

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In cluster randomized trials, clusters of subjects are randomized rather than subjects themselves, and missing outcomes are a concern as in individual randomized trials. We assessed strategies for handling missing data when analysing cluster randomized trials with a binary outcome; strategies included complete case, adjusted complete case, and simple and multiple imputation approaches. We performed a simulation study to assess bias and coverage rate of the population-averaged intervention-effect estimate. Both multiple imputation with a random-effects logistic regression model or classical logistic regression provided unbiased estimates of the intervention effect. Both strategies also showed good coverage properties, even slightly better for multiple imputation with a random-effects logistic regression approach. Finally, this latter approach led to a slightly negatively biased intracluster correlation coefficient estimate but less than that with a classical logistic regression model strategy. We applied these strategies to a real trial randomizing households and comparing ivermectin and malathion to treat head lice.
机译:在整群随机试验中,受试者群是随机分组的,而不是受试者本身,并且与个别随机试验一样,缺失的结果也是一个问题。当分析具有二元结果的聚类随机试验时,我们评估了处理缺失数据的策略。策略包括完整案例,调整后的完整案例以及简单和多种插补方法。我们进行了模拟研究,以评估人口平均干预效果估计值的偏倚和覆盖率。带有随机效应逻辑回归模型的多重插补或经典逻辑回归均提供了干预效果的无偏估计。两种策略均显示出良好的覆盖率特性,对于采用随机效应逻辑回归方法的多次插补,效果甚至更好。最后,后一种方法导致集群内相关系数估计值略有负偏斜,但比传统的Logistic回归模型策略少。我们将这些策略应用于实际的随机家庭试验,并比较伊维菌素和马拉硫磷治疗头虱。

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