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A study of R~2 measure under the accelerated failure time models

机译:加速失效时间模型下R〜2测度的研究

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For right-censored data, the accelerated failure time (AFT) model is an alternative to the commonly used proportional hazards regression model. It is a linear model for the (log-transformed) outcome of interest, and is particularly useful for censored outcomes that are not time-to-event, such as laboratory measurements. We provide a general and easily computable definition of the R-2 measure of explained variation under the AFT model for right-censored data. We study its behavior under different censoring scenarios and under different error distributions; in particular, we also study its robustness when the parametric error distribution is misspecified. Based on Monte Carlo investigation results, we recommend the log-normal distribution as a robust error distribution to be used in practice for the parametric AFT model, when the R-2 measure is of interest. We apply our methodology to an alcohol consumption during pregnancy data set from Ukraine.
机译:对于右删失的数据,加速故障时间(AFT)模型是常用比例风险回归模型的替代方法。它是感兴趣的(对数转换的)结果的线性模型,对于非事件事件的审查结果(例如实验室测量)特别有用。我们为右删失数据提供了AFT模型下解释性差异的R-2度量的通用且易于计算的定义。我们研究了在不同的检查场景和不同的错误分布下的行为。特别是,当参数误差分布指定错误时,我们还将研究其鲁棒性。基于蒙特卡洛调查结果,我们建议将对数正态分布作为鲁棒的误差分布,在R-2量度值得关注时,在实践中用于参数AFT模型。我们将我们的方法应用于来自乌克兰的怀孕期间饮酒数据集。

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