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A MODEL SELECTION PROCEDURE IN MIXTURE-PROCESS EXPERIMENTS FOR INDUSTRIAL PROCESS OPTIMIZATION

机译:用于工业过程优化的混合过程实验中的模型选择过程

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We present a model selection procedure for use in Mixture and Mixture-Process Experiments. Certain combinations of restrictions on the proportions of the mixture components can result in a very constrained experimental region. This results in collinearity among the covariates of the model, which can make it difficult to fit the model using the traditional method based on the significance of the coefficients. For this reason, a model selection methodology based on information criteria will be proposed for process optimization. Two examples are presented to illustrate this model selection procedure.
机译:我们介绍了用于混合物和混合物工艺实验的模型选择程序。混合物成分比例的某些限制组合可能会导致非常有限的实验区域。这导致了模型协变量之间的共线性,这可能使得使用传统方法基于系数的重要性很难拟合模型。因此,将提出一种基于信息标准的模型选择方法,以进行过程优化。给出两个例子来说明该模型选择过程。

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