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Testing for Lack of Fit in Blocked, Split-Plot, and Other Multi-Stratum Designs

机译:在阻塞,分裂图和其他多层设计中缺乏契合测试

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Textbooks on reponse surface methodology emphasize the importance of lack-of-fit tests when fitting response surface models and stress that, to be able to test for lack of fit, designed experiments should have replication and allow for pure-error estimation. In this paper, we show how to obtain pure-error estimates and how to carry out a lack-of-fit test when the experiment is not completely randomized, but a blocked experiment, a split-plot experiment, or any other multi-stratum experiment. Our approach to calculating pure-error estimates is based on residual maximum likelihood (REML) estimation of the variance components in a full treatment model (sometimes also referred to as a cell means model). It generalizes the approach suggested by Vining et al. (2005) in the sense that it works for a broader set of designs and for replicates other than center-point replicates. Our lack-of-fit test also generalizes the test proposed by Khuri (1992) for data from blocked experiments because it exploits replicates other than center-point replicates and works for split-plot and other multi-stratum designs as well. We provide analytical expressions for the test statistic and the corresponding degrees of freedom and demonstrate how to perform the lack-of-fit test in the SAS procedure MIXED. We re-analyze several published data sets and discover a few instances in which the usual response surface model exhibits significant lack of fit.
机译:对响应响应的教科书强调了拟合表面模型和应力时缺乏拟合测试的重要性,以便能够缺乏拟合,设计的实验应该具有复制并允许纯误差估计。在本文中,我们展示了如何在实验并未完全随机化时获得纯误差估计以及如何进行缺乏测试,而是阻塞实验,分裂绘图实验或任何其他多层次实验。我们计算纯误差估计的方法基于完整治疗模型中方差分量的剩余最大似然(REML)估计(有时也称为单元手段模型)。它概括了Vining等人建议的方法。 (2005)意义上,它适用于更广泛的设计以及比中心点重复的复制。我们缺乏拟合测试还概括了Khuri(1992)提出的测试,因为它剥削了来自中心点的复制和用于分裂图和其他多层设计的复制而剥削了复制。我们为测试统计和相应程度的自由提供分析表达,并演示如何在混合SAS过程中进行拟合测试。我们重新分析了几种公布的数据集并发现了一些实例,其中通常的响应表面模型表现出显着缺乏合适。

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