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Modeling restricted mean survival time under general censoring mechanisms

机译:在一般审查机制下建模受限平均生存时间

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Restricted mean survival time (RMST) is often of great clinical interest in practice. Several existing methods involve explicitly projecting out patient-specific survival curves using parameters estimated through Cox regression. However, it would often be preferable to directly model the restricted mean for convenience and to yield more directly interpretable covariate effects. We propose generalized estimating equation methods to model RMST as a function of baseline covariates. The proposed methods avoid potentially problematic distributional assumptions pertaining to restricted survival time. Unlike existing methods, we allow censoring to depend on both baseline and time-dependent factors. Large sample properties of the proposed estimators are derived and simulation studies are conducted to assess their finite sample performance. We apply the proposed methods to model RMST in the absence of liver transplantation among end-stage liver disease patients. This analysis requires accommodation for dependent censoring since pre-transplant mortality is dependently censored by the receipt of a liver transplant.
机译:限制平均生存时间(RMST)在实践中通常具有很大的临床意义。几种现有方法涉及使用通过Cox回归估计的参数明确地绘制出患者特定的生存曲线。但是,为方便起见,直接建模受限均值并产生更直接可解释的协变量效果通常是可取的。我们提出了广义估计方程方法,以将RMST建模为基线协变量的函数。所提出的方法避免了与有限的生存时间有关的潜在有问题的分布假设。与现有方法不同,我们允许审查同时依赖于基线和时间相关因素。推导了估计的估计器的大样本属性,并进行了仿真研究以评估其有限的样本性能。我们将提出的方法用于在没有肝移植的晚期肝病患者中模拟RMST。由于移植前的死亡率取决于接受肝移植的检查,因此该分析需要适应性检查。

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