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A Bayesian Perspective on the Analysis of Unreplicated Factorial Experiments Using Potential Outcomes

机译:贝叶斯观点的潜在结果分析无重复析因实验

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Unreplicated factorial designs have been widely used in scientific and industrial settings, when it is important to distinguish "active" or real factorial effects from "inactive" or noise factorial effects used to estimate residual or "error" terms. We propose a new approach to screen for active factorial effects from such experiments that uses the potential outcomes framework and is based on sequential posterior predictive model checks. One advantage of the proposed method is its ability to broaden the standard definition of active effects and to link their definition to the population of interest. Another important aspect of this approach is its conceptual connection to Fisherian randomization tests. Extensive simulation studies are conducted, which demonstrate the superiority of the proposed approach over existing ones in the situations considered.
机译:当重要的是要区分“主动”或真实的阶乘效应与用于估计残差或“误差”项的“非主动”或噪声阶乘效应时,非重复阶乘设计已广泛用于科学和工业环境。我们提出了一种从此类实验中筛选主动因子效应的新方法,该方法使用了潜在的结果框架,并基于顺序的后验预测模型检查。所提出的方法的一个优点是其能够拓宽主动效应的标准定义并将其定义与目标人群联系起来的能力。这种方法的另一个重要方面是其与Fisherian随机检验的概念联系。进行了大量的模拟研究,这些研究证明了在所考虑的情况下,该方法相对于现有方法的优越性。

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