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Implications of model misspecification in robust tests for recurrent events

机译:模型错误指定对反复事件的鲁棒测试的影响

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Chronic disease processes often feature transient recurrent adverse clinical events. Treatment comparisons in clinical trials of such disorders must be based on valid and efficient methods of analysis. We discuss robust strategies for testing treatment effects with recurrent events using methods based on marginal rate functions, partially conditional rate functions, and methods based on marginal failure time models. While all three approaches lead to valid tests of the null hypothesis when robust variance estimates are used, they differ in power. Moreover, some approaches lead to estimators of treatment effect which are more easily interpreted than others. To investigate this, we derive the limiting value of estimators of treatment effect from marginal failure time models and illustrate their dependence on features of the underlying point process, as well as the censoring mechanism. Through simulation, we show that methods based on marginal failure time distributions are shown to be sensitive to treatment effects delaying the occurrence of the very first recurrences. Methods based on marginal or partially conditional rate functions perform well in situations where treatment effects persist or in settings where the aim is to summarizee long-term data on efficacy.
机译:慢性疾病过程通常具有暂时性的反复不良临床事件。此类疾病的临床试验中的治疗比较必须基于有效和有效的分析方法。我们讨论了使用基于边际率函数,部分条件率函数和基于边际失效时间模型的方法测试复发事件治疗效果的可靠策略。当使用鲁棒方差估计时,尽管所有三种方法都可以对原假设进行有效检验,但它们的功效不同。而且,某些方法导致对治疗效果的估计,而这些方法比其他方法更容易解释。为了对此进行研究,我们从边际失效时间模型中得出了治疗效果估计量的极限值,并说明了它们对基础点过程特征以及检查机制的依赖性。通过仿真,我们表明基于边际故障时间分布的方法对处理效果很敏感,从而延迟了第一次复发的发生。基于边际或部分条件费率函数的方法在治疗效果持续存在的情况下或目的是总结长期疗效数据的情况下效果很好。

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