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首页> 外文期刊>Journal of Statistical Software >Fitting Accelerated Failure Time Models in Routine Survival Analysis with R Package aftgee
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Fitting Accelerated Failure Time Models in Routine Survival Analysis with R Package aftgee

机译:使用R Package Agegee在日常生存分析中拟合加速故障时间模型

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Accelerated failure time (AFT) models are alternatives to relative risk models which are used extensively to examine the covariate effects on event times in censored data regression. Nevertheless, AFT models have been much less utilized in practice due to lack of reliable computing methods and software. This paper describes an R package aftgee that implements recently developed inference procedures for AFT models with both the rank-based approach and the least squares approach. For the rank-based approach, the package allows various weight choices and uses an induced smoothing procedure that leads to much more efficient computation than the linear programming method. With the rank-based estimator as an initial value, the generalized estimating equation approach is used as an extension of the least squares approach to the multivariate case. Additional sampling weights are incorporated to handle missing data needed as in case-cohort studies or general sampling schemes. A simulated dataset and two real life examples from biomedical research are employed to illustrate the usage of the package.
机译:加速故障时间(AFT)模型是相对风险模型的替代方法,该模型广泛用于检查审查数据回归中事件时间的协变量影响。然而,由于缺乏可靠的计算方法和软件,AFT模型在实践中的使用已大大减少。本文介绍了一种R包尾部,它同时使用基于秩的方法和最小二乘法来实现针对AFT模型的最新开发的推理程序。对于基于等级的方法,该程序包允许选择各种权重,并使用诱导平滑过程,该过程导致比线性编程方法有效得多的计算。以基于秩的估计器为初始值,广义估计方程方法被用作最小二乘法对多元情况的扩展。结合了其他抽样权重,以处理案例研究或一般抽样方案中所需的缺失数据。一个模拟的数据集和两个来自生物医学研究的现实生活中的例子被用来说明该包装的用法。

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