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A regularized variable selection procedure in additive hazards model with stratified case-cohort design

机译:具有分层案例队列设计的加性危害模型中的正则化变量选择程序

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Case-cohort designs are commonly used in large epidemiological studies to reduce the cost associated with covariate measurement. In many such studies the number of covariates is very large. An efficient variable selection method is needed for case-cohort studies where the covariates are only observed in a subset of the sample. Current literature on this topic has been focused on the proportional hazards model. However, in many studies the additive hazards model is preferred over the proportional hazards model either because the proportional hazards assumption is violated or the additive hazards model provides more relevent information to the research question. Motivated by one such study, the Atherosclerosis Risk in Communities (ARIC) study, we investigate the properties of a regularized variable selection procedure in stratified case-cohort design under an additive hazards model with a diverging number of parameters. We establish the consistency and asymptotic normality of the penalized estimator and prove its oracle property. Simulation studies are conducted to assess the finite sample performance of the proposed method with a modified cross-validation tuning parameter selection methods. We apply the variable selection procedure to the ARIC study to demonstrate its practical use.
机译:案例队列设计通常用于大型流行病学研究中,以降低与协变量测量相关的成本。在许多此类研究中,协变量的数量非常大。对于仅在样本子集中观察到协变量的病例队列研究,需要一种有效的变量选择方法。当前关于该主题的文献集中在比例风险模型上。但是,在许多研究中,由于违反了比例风险假设,或者因为相加危害模型为研究问题提供了更多的相关信息,所以相较于比例危害模型,优选相加危害模型。受一项这样的研究(社区动脉粥样硬化风险)研究的启发,我们研究了分层加分的风险模型在具有多个参数的附加危险模型下的正则化变量选择程序的性质。我们建立了惩罚估计量的一致性和渐近正态性,并证明了它的预言性质。进行了仿真研究,以评估使用改进的交叉验证调整参数选择方法提出的方法的有限样本性能。我们将变量选择程序应用于ARIC研究,以证明其实际应用。

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