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具有区间删失失效时间数据的病例队列研究。

Case-cohort studies with interval-censored failure time data.

作者信息

Zhou Q, Zhou H, Cai J

机构信息

Department of Biostatistics, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599, U.S.A.

出版信息

Biometrika. 2017 Mar;104(1):17-29. doi: 10.1093/biomet/asw067. Epub 2017 Feb 3.

Abstract

The case-cohort design has been widely used as a means of cost reduction in assembling or measuring expensive covariates in large cohort studies. The existing literature on the case-cohort design is mainly focused on right-censored data. In practice, however, the failure time is often subject to interval-censoring; it is known only to fall within some random time interval. In this paper, we consider the case-cohort study design for interval-censored failure time and develop a sieve semiparametric likelihood approach for analyzing data from this design under the proportional hazards model. We construct the likelihood function using inverse probability weighting and build the sieves with Bernstein polynomials. The consistency and asymptotic normality of the resulting regression parameter estimator are established and a weighted bootstrap procedure is considered for variance estimation. Simulations show that the proposed method works well for practical situations, and an application to real data is provided.

摘要

病例队列设计已被广泛用作在大型队列研究中组装或测量昂贵协变量时降低成本的一种手段。现有关于病例队列设计的文献主要集中在右删失数据上。然而,在实际中,失效时间常常受到区间删失的影响;仅知道它落在某个随机时间区间内。在本文中,我们考虑用于区间删失失效时间的病例队列研究设计,并开发一种筛半参数似然方法,用于在比例风险模型下分析来自该设计的数据。我们使用逆概率加权构建似然函数,并用伯恩斯坦多项式构建筛。建立了所得回归参数估计量的一致性和渐近正态性,并考虑了用于方差估计的加权自助法程序。模拟表明,所提出的方法在实际情况中效果良好,并给出了对实际数据的应用。

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