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A Data-Generation Process for Data with Specified Risk Differences or Numbers Needed to Treat

机译:具有需要处理的具有指定风险差异或数字的数据的数据生成过程

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摘要

Monte Carlo simulation methods are increasingly being used to evaluate the performance of statistical methods and estimators. However, the utility of these methods depends upon the existence of appropriate data-generating processes. Clinical commentators have suggested that the risk difference and the associated number needed to treat (NNT) are important measures of treatment effect when outcomes are binary. While these quantities are easily estimated in randomized controlled trials, there is an increasing interest in methods to estimate these quantities using observational or non-randomized data. However, the lack of a data-generating process for simulating data in which treatment induces a specified risk difference hinders the systematic examination of the performance of these methods. In the current study, we describe and evaluate the performance of a data-generating process for simulating data in which treatment induces a specified risk difference. The process is based upon an iterative process of evaluating marginal risk differences using Monte Carlo integration. The proposed data-generating process is flexible and can easily incorporate different distributions for baseline covariates and different levels of the baseline risk of the event. The data-generating process can also be easily modified to simulate data in which treatment induces a specified relative risk.
机译:蒙特卡洛模拟方法越来越多地用于评估统计方法和估计器的性能。但是,这些方法的实用性取决于适当的数据生成过程的存在。临床评论员建议,当结局为二进制时,风险差异和需要治疗的相关数目(NNT)是治疗效果的重要指标。尽管在随机对照试验中很容易估算出这些数量,但人们对使用观测或非随机数据估算这些数量的方法的兴趣日益浓厚。但是,缺乏用于模拟数据的数据生成过程,在该过程中,处理会引起特定的风险差异,这妨碍了对这些方法的性能进行系统的检查。在当前的研究中,我们描述和评估了数据生成过程的性能,该过程用于模拟其中治疗引起特定风险差异的数据。该过程基于使用蒙特卡洛积分评估边际风险差异的迭代过程。拟议的数据生成过程非常灵活,可以轻松合并基线协变量的不同分布以及事件基线风险的不同水平。数据生成过程也可以轻松修改,以模拟其中治疗引起特定相对风险的数据。

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    Institute for Clinical Evaluative Sciences, Toronto, Ontario, Canada;

  • 收录信息 美国《科学引文索引》(SCI);
  • 原文格式 PDF
  • 正文语种 eng
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