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A Review of Bayesian Perspectives on Sample Size Derivation for Confirmatory Trials

机译:贝叶斯思想对验证试验的样本大小衍生观点述评

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摘要

Sample size derivation is a crucial element of planning any confirmatory trial. The required sample size is typically derived based on constraints on the maximal acceptable Type I error rate and minimal desired power. Power depends on the unknown true effect and tends to be calculated either for the smallest relevant effect or a likely point alternative. The former might be problematic if the minimal relevant effect is close to the null, thus requiring an excessively large sample size, while the latter is dubious since it does not account for the a priori uncertainty about the likely alternative effect. A Bayesian perspective on sample size derivation for a frequentist trial can reconcile arguments about the relative a priori plausibility of alternative effects with ideas based on the relevance of effect sizes. Many suggestions as to how such "hybrid" approaches could be implemented in practice have been put forward. However, key quantities are often defined in subtly different ways in the literature. Starting from the traditional entirely frequentist approach to sample size derivation, we derive consistent definitions for the most commonly used hybrid quantities and highlight connections, before discussing and demonstrating their use in sample size derivation for clinical trials.
机译:样本量导出是规划任何确认试验的重要因素。通常基于最大可接受类型I错误率和最小期望功率的约束导出所需的样本量。权力取决于未知的真实效果,往往会计算最小的相关效果或可能的点替代方案。如果最小的相关效果接近空位,前者可能是有问题的,因此需要过大的样本量,而后者是可疑的,因为它不考虑关于可能的替代效果的先验不确定性。关于频繁试验的样本大小推导的贝叶斯透视可以根据效果大小的相关性,调和关于替代效果的相对效果的先验合理性的争论。提出了许多关于如何在实践中实施这种“混合”方法的建议。然而,在文献中通常以巧妙的方式定义键量。从传统的完全频繁的方法开始采样大小推导,我们在讨论和展示它们在临床试验中的样本大小推导中使用之前,我们推导了最常用的混合量和突出显示的一致定义。

著录项

  • 来源
    《The American statistician》 |2021年第4期|424-432|共9页
  • 作者单位

    Univ Cambridge MRC Biostat Unit East Forvie Site Robinson Way Biomed Campus Cambridge CB2 0SR England;

    Newcastle Univ Populat Hlth Sci Inst Newcastle Upon Tyne Tyne & Wear England;

    Queen Mary Univ London Pragmat Clin Trials Unit London England;

    Univ Cambridge MRC Biostat Unit East Forvie Site Robinson Way Biomed Campus Cambridge CB2 0SR England;

    F Hoffmann La Roche Methods Collaborat & Outreach Grp MCO Dept Biostat Basel Switzerland;

    Univ Cambridge MRC Biostat Unit East Forvie Site Robinson Way Biomed Campus Cambridge CB2 0SR England|Newcastle Univ Populat Hlth Sci Inst Newcastle Upon Tyne Tyne & Wear England;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Assurance; Expected power; Probability of success; Power; Sample size derivation;

    机译:保证;预期的力量;成功的概率;电力;样本大小导火;
  • 入库时间 2022-08-19 03:09:33

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