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Simulating biologically plausible complex survival data

机译:模拟生物学上可行的复杂生存数据

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Simulation studies are conducted to assess the performance of current and novel statistical models in pre-defined scenarios. It is often desirable that chosen simulation scenarios accurately reflect a biologically plausible underlying distribution. This is particularly important in the framework of survival analysis, where simulated distributions are chosen for both the event time and the censoring time. This paper develops methods for using complex distributions when generating survival times to assess methods in practice. We describe a general algorithm involving numerical integration and root-finding techniques to generate survival times from a variety of complex parametric distributions, incorporating any combination of time-dependent effects, time-varying covariates, delayed entry, random effects and covariates measured with error. User-friendly Stata software is provided. Copyright (c) 2013 John Wiley & Sons, Ltd.
机译:进行模拟研究以评估当前和新颖的统计模型在预定义方案中的性能。通常希望选择的模拟方案准确反映生物学上合理的基础分布。这在生存分析的框架中尤其重要,在该框架中,为事件时间和审查时间选择了模拟分布。本文提出了在生成生存时间以评估实际方法时使用复杂分布的方法。我们描述了一种通用算法,该算法涉及数值积分和求根技术,可从多种复杂的参数分布中生成生存时间,并结合时效,时变协变量,延迟进入,随机效应和误差测量的协变量的任意组合。提供了用户友好的Stata软件。版权所有(c)2013 John Wiley&Sons,Ltd.

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