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Administrative and artificial censoring in censored regression models.

机译:审查回归模型中的行政和人为审查。

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Administrative censoring, in which potential censoring times are known even for subjects who fail, is common in clinical and epidemiologic studies. Nonetheless, most statistical methods for failure-time data do not use the information contained in these potential censoring times. Robins has proposed two approaches for using this information to estimate parameters in an accelerated failure-time model; the methods generally require the analyst to treat as censored some subjects whose failure time is observed. This paper provides a rationale for this "artificial censoring", discusses some of its consequences, and illustrates some of these points with data from a randomized trial of breast cancer screening. Copyright 2001 John Wiley & Sons, Ltd.
机译:在临床和流行病学研究中,行政检查(即使对于失败的受试者也可能知道检查时间)在行政检查中很常见。但是,大多数故障时间数据的统计方法都不会使用这些潜在的检查时间中包含的信息。 Robins提出了两种方法来使用此信息来估计加速故障时间模型中的参数。这些方法通常要求分析人员将观察到故障时间的某些对象视为审查对象。本文为这种“人工检查”提供了理论基础,讨论了其一些后果,并使用来自乳腺癌筛查随机试验的数据说明了其中的一些观点。版权所有2001 John Wiley&Sons,Ltd.

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