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Estimating direct effects in cohort and case-control studies

机译:估计队列和病例对照研究中的直接影响

摘要

Estimating the effect of an exposure on an outcome, other than through some given mediator, requires adjustment for all risk factors of the mediator that are also associated with the outcome. When these risk factors are themselves affected by the exposure, then standard regression methods do not apply. In this article, I review methods for accommodating this and discuss their limitations for estimating the controlled direct effect (ie, the exposure effect when controlling the mediator at a specified level uniformly in the population). In addition, I propose a powerful and easy-to-apply alternative that uses G-estimation in structural nested models to address these limitations both for cohort and case-control studies.
机译:估计暴露对结果的影响,而不是通过某些给定的调解人,需要调整也与结果相关的所有调解人的风险因素。当这些风险因素本身受暴露影响时,则不应用标准回归方法。在本文中,我回顾了适应这种情况的方法,并讨论了它们在估计受控直接效应(即在人群中统一控制特定水平的介体时的暴露效应)的局限性。此外,我提出了一种功能强大且易于应用的替代方法,该方法在结构嵌套模型中使用G估计来解决队列研究和病例对照研究的这些局限性。

著录项

  • 作者

    Vansteelandt Stijn;

  • 作者单位
  • 年度 2009
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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