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Multiple augmentation for interval-censored data with measurement error.

机译:具有测量误差的区间删节数据的多次扩充。

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摘要

There has been substantial effort devoted to the analysis of censored failure time with covariates that are subject to measurement error. Previous studies have focused on right-censored survival data, but interval-censored survival data with covariate measurement error are yet to be investigated. Our study is partly motivated by analysis of the HIV clinical trial AIDS Clinical Trial Group (ACTG) 175 data, where the occurrence time of AIDS is interval censored and the covariate CD4 count is subject to measurement error. We assume that the data are realized from a proportional hazards model. A multiple augmentation approach is proposed to convert interval-censored data to right-censored data, and the conditional score approach is then employed to account for measurement error. The proposed approach is easy to implement and can be readily extended to other semiparametric models. Extensive simulations show that the proposed approach has satisfactory finite-sample performance. The ACTG 175 data are then analyzed.
机译:已经进行了大量工作来分析带有受测量误差影响的协变量的删失时间。先前的研究集中于右删失的生存数据,但是具有协变量测量误差的区间删失的生存数据有待研究。我们的研究部分是由对HIV临床试验AIDS临床试验组(ACTG)175数据的分析所激发的,其中AIDS的发生时间是间隔检查的,并且协变量CD4计数易受测量误差的影响。我们假设数据是从比例风险模型中获得的。提出了一种多重扩充方法,将间隔检查的数据转换为右检查的数据,然后采用条件评分方法解决测量误差。所提出的方法易于实现,并且可以容易地扩展到其他半参数模型。大量的仿真表明,该方法具有令人满意的有限样本性能。然后分析ACTG 175数据。

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