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Estimating the causal effect of treatment in observational studies with survival time end points and unmeasured confounding

机译:用生存时间终点和无法衡量的混淆估计观察研究中治疗的因果关系

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摘要

Estimation of the effect of a treatment in the presence of unmeasured confounding is a common objective in observational studies. The two-stage least squares instrumental variables procedure is frequently used but is not applicable to time-to-event data if some observations are censored. We develop a simultaneous equations model to account for unmeasured confounding of the effect of treatment on survival time subject to censoring. The identification of the treatment effect is assisted by instrumental variables (variables related to treatment but conditional on treatment, not to the outcome) and the assumed bivariate distribution underlying the data-generating process. The methodology is illustrated on data from an observational study of time to death following endovascular or open repair of ruptured abdominal aortic aneurysms. As the instrumental variable and the distributional assumptions cannot be jointly assessed from the observed data, we evaluate the sensitivity of the results to these assumptions.
机译:在无法测量的混杂情况下估计治疗效果是观察研究的共同目标。经常使用两阶段最小二乘工具变量程序,但如果对某些观察结果进行了检查,则不适用于事件时间数据。我们开发了一个联立方程模型,以应对在审查制度下生存时间对治疗效果的无法衡量的混淆。仪器变量(与治疗相关但取决于治疗的变量,而不取决于结果的变量)和数据生成过程所基于的假定双变量分布有助于确定治疗效果。血管内破裂或开腹修复破裂性腹主动脉瘤后至死亡时间的观察性研究数据说明了该方法。由于不能从观测数据中共同评估工具变量和分布假设,因此我们评估结果对这些假设的敏感性。

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