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伯克森测量误差对Cox回归模型中参数估计的影响。

Effect of Berkson measurement error on parameter estimates in Cox regression models.

作者信息

Küchenhoff Helmut, Bender Ralf, Langner Ingo

机构信息

Department of Statistics, Ludwig-Maximilians-Universität, Akademiestr. 1, 80799, München, Germany.

出版信息

Lifetime Data Anal. 2007 Jun;13(2):261-72. doi: 10.1007/s10985-007-9036-2. Epub 2007 Mar 31.

Abstract

We study the effect of additive and multiplicative Berkson measurement error in Cox proportional hazard model. By plotting the true and the observed survivor function and the true and the observed hazard function dependent on the exposure one can get ideas about the effect of this type of error on the estimation of the slope parameter corresponding to the variable measured with error. As an example, we analyze the measurement error in the situation of the German Uranium Miners Cohort Study both with graphical methods and with a simulation study. We do not see a substantial bias in the presence of small measurement error and in the rare disease case. Even the effect of a Berkson measurement error with high variance, which is not unrealistic in our example, is a negligible attenuation of the observed effect. However, this effect is more pronounced for multiplicative measurement error.

摘要

我们研究了Cox比例风险模型中加性和乘性伯克森测量误差的影响。通过绘制真实和观察到的生存函数以及真实和观察到的风险函数(它们依赖于暴露情况),可以了解此类误差对与测量误差变量相对应的斜率参数估计的影响。例如,我们使用图形方法和模拟研究分析了德国铀矿工队列研究中的测量误差。在存在小测量误差和罕见疾病的情况下,我们没有看到实质性偏差。即使在我们的例子中具有高方差的伯克森测量误差的影响,这并非不现实,也是观察到的效应的可忽略不计的衰减。然而,这种效应对于乘性测量误差更为明显。

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