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Stratified proportional subdistribution hazards model with covariate-adjusted censoring weight for case-cohort studies

机译:分层比例分布危害危险模型,适用于CASE - 群组研究

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The case-cohort study design is widely used to reduce cost when collecting expensive covariates in large cohort studies with survival or competing risks outcomes. A case-cohort study dataset consists of two parts: (a) a random sample and (b) all cases or failures from a specific cause of interest. Clinicians often assess covariate effects on competing risks outcomes. The proportional subdistribution hazards model directly evaluates the effect of a covariate on the cumulative incidence function under the non-covariate-dependent censoring assumption for the full cohort study. However, the non-covariate-dependent censoring assumption is often violated in many biomedical studies. In this article, we propose a proportional subdistribution hazards model for case-cohort studies with stratified data with covariate-adjusted censoring weight. We further propose an efficient estimator when extra information from the other causes is available under case-cohort studies. The proposed estimators are shown to be consistent and asymptotically normal. Simulation studies show (a) the proposed estimator is unbiased when the censoring distribution depends on covariates and (b) the proposed efficient estimator gains estimation efficiency when using extra information from the other causes. We analyze a bone marrow transplant dataset and a coronary heart disease dataset using the proposed method.
机译:该病例队列研究设计被广泛应用于大型队列研究收集昂贵协变量时,带瘤生存或竞争风险的结果,以降低成本。的病例队列研究数据集由两个部分组成:(a)一种随机样本和(b)源自所关注的具体原因所有的情况下或故障。临床医生经常评估竞争风险的结果协变量的影响。该子分布比例风险模型评估直接协变量对累计发生功能的非协依赖截尾的假设为全队列研究下的效果。然而,非协依赖截尾的假设常常受到侵犯在许多生物医学研究。在这篇文章中,我们提出了与协调整的审查权重分层数据的情况下,队列研究一个子分布比例风险模型。我们进一步提出了一种高效估计当从其他原因的额外信息情况下,队列研究是可用的。所提出的估计显示是一致和渐近正常。模拟研究表明,(一)所提出的估计是无偏的,当审查分配使用来自其他原因的额外信息时依赖于协变量和(b)所提出的有效估计收益估计效率。我们分析了骨髓移植的数据集,并使用该方法冠状动脉心脏疾病的数据集。

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