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在存在右删失的时间事件结局和竞争风险的情况下,对平均处理效应的估计。

On the estimation of average treatment effects with right-censored time to event outcome and competing risks.

机构信息

Department of Biostatistics, University of Copenhagen, Copenhagen, Denmark.

Neurobiology Research Unit, University Hospital of Copenhagen, Rigshospitalet, Copenhagen, Denmark.

出版信息

Biom J. 2020 May;62(3):751-763. doi: 10.1002/bimj.201800298. Epub 2020 Feb 11.

Abstract

We are interested in the estimation of average treatment effects based on right-censored data of an observational study. We focus on causal inference of differences between t-year absolute event risks in a situation with competing risks. We derive doubly robust estimation equations and implement estimators for the nuisance parameters based on working regression models for the outcome, censoring, and treatment distribution conditional on auxiliary baseline covariates. We use the functional delta method to show that these estimators are regular asymptotically linear estimators and estimate their variances based on estimates of their influence functions. In empirical studies, we assess the robustness of the estimators and the coverage of confidence intervals. The methods are further illustrated using data from a Danish registry study.

摘要

我们对基于观察性研究右删失数据的平均治疗效果估计感兴趣。我们专注于存在竞争风险情况下 t 年绝对事件风险差异的因果推断。我们推导出双稳健估计方程,并基于辅助基线协变量条件下的结局、删失和治疗分布的工作回归模型,为混杂参数实施估计器。我们使用函数差分法证明这些估计器是正则渐近线性估计器,并基于影响函数的估计来估计它们的方差。在实证研究中,我们评估了估计器的稳健性和置信区间的覆盖范围。这些方法进一步通过丹麦注册研究的数据进行说明。

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