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Doubly robust estimation, optimally truncated inverse-intensity weighting and increment-based methods for the analysis of irregularly observed longitudinal data

机译:双稳健估计,最优截断逆强度加权和基于增量的方法,用于分析不规则观测的纵向数据

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摘要

Longitudinal data arising from routine follow-up of patients will often have irregular measurement times. Existing methods for analysis include joint modelling of the outcome and measurement processes, and inverse-intensity weighting (IIW). This work extends previously proposed analysis of increments to the case of irregular follow-up, yielding a model for the increments that can be used as a stand-alone method. Furthermore, we propose two ways of combining the increments and IIW estimators. First, we use the increment model to select the truncation point for the inverse-intensity weights that minimises the mean squared error of the IIW estimator. Second, we use the increment model to augment the usual IIW estimating equations to form a doubly robust estimator. We evaluate the methods through simulation and apply these to a recent study of juvenile dermatomyositis.
机译:来自患者常规随访的纵向数据通常会有不规则的测量时间。现有的分析方法包括对结果和度量过程进行联合建模,以及强度反比加权法(IIW)。这项工作将先前提出的增量分析扩展到了不规则随访的情况,从而产生了增量模型,可以用作独立方法。此外,我们提出了两种结合增量和IIW估计量的方法。首先,我们使用增量模型为逆强度权重选择截断点,以将IIW估计量的均方误差最小化。其次,我们使用增量模型来扩充常用的IIW估计方程,从而形成双重鲁棒的估计器。我们通过模拟评估方法,并将其应用于青少年皮肌炎的最新研究。

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