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Generalized mean residual life models for case-cohort and nested case-control studies

机译:案例队列和嵌套病例对照研究的广义平均剩余寿命模型

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摘要

Mean residual life (MRL) is the remaining life expectancy of a subject who has sur-vived to a certain time point and can be used as an alternative to hazard function for characterizing the distribution of a time-to-event variable. Inference and appli-cation of MRL models have primarily focused on full-cohort studies. In practice, case-cohort and nested case-control designs have been commonly used within large cohorts that have long follow-up and study rare diseases, particularly when study-ing costly molecular biomarkers. They enable prospective inference as the full-cohort design with significant cost-saving benefits. In this paper, we study the modeling and inference of a family of generalized MRL models under case-cohort and nested case-control designs. Built upon the idea of inverse selection probability, the weighted estimating equations are constructed to estimate regression parameters and baseline MRL function. Asymptotic properties of the proposed estimators are established and finite-sample performance is evaluated by extensive numerical simulations. An appli-cation to the New York University Women's Health Study is presented to illustrate the proposed models and demonstrate a model diagnostic method to guide practical implementation.
机译:平均剩余寿命(MRL)是剩余的受试者的剩余预期寿命,该剩余寿命为一定时间点,并且可以用作危险功能的替代,用于表征时间到事件变量的分布。推理和MRL模型的应用主要集中在全队列研究。在实践中,案例 - 队列和嵌套案例控制设计通常在大群组中使用,这些群体具有长期随访和研究稀有疾病,特别是在研究昂贵的分子生物标志物时。它们使预期推断能够作为全面队员设计,具有显着的节省成本效益。在本文中,我们研究了在案例 - 队列和嵌套案例控制设计下的广义MRL模型系列的建模和推理。构建在逆选择概率的概念之上,构建加权估计方程以估计回归参数和基线MRL函数。建立了拟议估计器的渐近性质,并通过广泛的数值模拟评估了有限样的性能。提出了纽约大学女性健康研究的应用,以说明所提出的模型,并展示了指导实际实施的模型诊断方法。

著录项

  • 来源
    《Lifetime Data Analysis》 |2020年第4期|789-819|共31页
  • 作者单位

    Department of Population Health New York University School of Medicine New York NY 10016 USA;

    Department of Population Health New York University School of Medicine New York NY 10016 USA Department of Environmental Health New York University School of Medicine New York NY 10016 USA;

    Department of Population Health New York University School of Medicine New York NY 10016 USA Department of Environmental Health New York University School of Medicine New York NY 10016 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Counting process; Estimating equations; Inverse probability weighting; Model checking; Martingale residuals;

    机译:计数过程;估计方程;反向概率加权;模型检查;Martingale Residuals.;

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