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首页> 外文期刊>Journal of nonparametric statistics >Variable selection for partially linear proportional hazards model with covariate measurement error
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Variable selection for partially linear proportional hazards model with covariate measurement error

机译:具有协变量测量误差的部分线性比例危险模型的可变选择

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摘要

In survival analysis, we may encounter the following three problems: nonlinear covariate effect, variable selection and measurement error. Existing studies only address one or two of these problems. The goal of this study is to fill the knowledge gap and develop a novel approach to simultaneously address all three problems. Specifically, a partially time-varying coefficient proportional hazards model is proposed to more flexibly describe covariate effects. Corrected score and conditional score approaches are employed to accommodate potential measurement error. For the selection of relevant variables and regularised estimation, a penalisation approach is adopted. It is shown that the proposed approach has satisfactory asymptotic properties. It can be effectively realised using an iterative algorithm. The performance of the proposed approach is assessed via simulation studies and further illustrated by application to data from an AIDS clinical trial.
机译:在生存分析中,我们可能会遇到以下三个问题:非线性协变量,可变选择和测量误差。现有的研究只解决了其中一个或两个问题。本研究的目标是填补知识差距,制定一种新的方法,同时解决所有三个问题。具体地,提出了部分时变系数比例危害模型,以更灵活地描述协变量效应。校正得分和条件分数方法采用潜在的测量误差。为了选择相关变量和正则化估计,采用惩罚方法。结果表明,该方法具有令人满意的渐近性质。可以使用迭代算法有效地实现它。通过模拟研究评估所提出的方法的性能,并通过应用于来自艾滋病临床试验的数据进一步说明。

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