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A Model-Based Conditional Power Assessment for Decision Making in Randomized Controlled Trial Studies

机译:随机对照试验研究中基于模型的条件功率评估决策

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摘要

Conditional power based on summary statistic by comparing outcomes (such as the sample mean) directly between two groups is a convenient tool for decision making in randomized controlled trial studies. In this paper, we extend the traditional summary statistic-based conditional power with a general model-based assessment strategy, where the test statistic is based on a regression model. Asymptotic relationships between parameter estimates based on the observed interim data and final unobserved data are established, from which we develop an analytic model-based conditional power assessment for both Gaussian and non-Gaussian data. The model-based strategy is not only flexible in handling baseline covariates and more powerful in detecting the treatment effects compared with the conventional method, but also more robust in controlling the overall type I error under certain missing data mechanisms. The performance of the proposed method is evaluated by extensive simulation studies and illustrated with an application to a clinical study.
机译:通过直接比较两组之间的结果(例如样本均值)而基于摘要统计量的条件能力是在随机对照试验研究中进行决策的便捷工具。在本文中,我们用基于模型的通用评估策略扩展了传统的基于摘要统计的条件能力,其中测试统计基于回归模型。建立了基于观测到的临时数据和最终未观测到的数据的参数估计之间的渐近关系,从中我们针对高斯和非高斯数据开发了基于解析模型的条件功率评估。与传统方法相比,基于模型的策略不仅灵活处理基线协变量,并且在检测治疗效果方面更为强大,而且在某些缺失的数据机制下,在控制总体I型错误方面也更加强大。通过广泛的模拟研究评估了所提出方法的性能,并说明了其在临床研究中的应用。

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