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A BROAD SYMMETRY CRITERION FOR NONPARAMETRIC VALIDITY OF PARAMETRICALLY-BASED TESTS IN RANDOMIZED TRIALS

机译:随机试验中基于参数的测试的非参数有效性的广义对称性判据

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摘要

Summary. Pilot phases of a randomized clinical trial often suggest that a parametric model may be an accurate description of the trialu27s longitudinal trajectories. However, parametric models are often not used for fear that they may invalidate tests of null hypotheses of equality between the experimental groups. Existing work has shown that when, for some types of data, certain parametric models are used, the validity for testing the null is preserved even if the parametric models are incorrect. Here, we provide a broader and easier to check characterization of parametric models that can be used to (a) preserve nonparametric validity of testing the null hypothesis, i.e., even when the models are incorrect, and (b) increase power compared to the non- or semiparametric bounds when the models are close to correct. We demonstrate our results in a clinical trial of depression in Alzheimeru27s patients.
机译:摘要。随机临床试验的试验阶段通常表明,参数模型可能是试验纵向轨迹的准确描述。但是,通常不会使用参数模型,因为它们可能会使对实验组之间的相等性零假设的检验无效。现有工作表明,对于某些类型的数据,当使用某些参数模型时,即使参数模型不正确,也会保留测试null的有效性。在这里,我们提供了更广泛,更容易检查的参数模型特征,这些特征模型可用于(a)保留测试零假设的非参数有效性,即,即使模型不正确,以及(b)与非参数模型相比,其功效也有所提高-或模型接近正确时的半参数范围。我们在阿尔茨海默氏症患者的抑郁症临床试验中证明了我们的结果。

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