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Two Approaches for Improving the Dual Response Method in Robust Parameter Design

机译:鲁棒参数设计中双重响应方法的两种改进方法

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摘要

The prediction properties of models used in the dual response approach to robust parameter design are studied, and two procedures that improve the performance of the approach are proposed. The first procedures suggests scaling of the noise variables to rebuke the expected mean squared error of the variance model, based on the concept that the range of the noise variables used in the experimental design should contain most of their distribution. Naturally, the scaling improves the fit of the part of the model associated with the noise factors. However, it is shown that such scaling does not alter the variance contribution of the noise factors, which is fundamental for robust parameter design. The second procedure combines the variance due to the noise factors with the variance due to the prediction error of the fitted model(i.e., it looks at the variance of the predictions), thus considering all sources of variability present in the problem. An unbiased estimator of this combined variance is developed. Two examples are given for each procedure. The second proposed approach is compared with the dual response approach recommended in the literature by means of the prediction intervals of the responses as recently discussed by Myers et al.(1997).It is found in the examples that the new procedure gives narrower intervals (50percent and 12percent percent smaller) where the degree of improvement depends,as expected, on the goodness of fit of the response surface model. The resulting solutions thus obtained are robust to both noise factor and parameter estimation uncertainty. Negative variance values, possible in the usual dual response approach in the literature, are avoided in the new formulation.
机译:研究了在双响应方法中用于鲁棒参数设计的模型的预测特性,并提出了两种改善方法性能的方法。第一个步骤建议根据实验设计中使用的噪声变量范围应包含其大部分分布的概念,对噪声变量进行缩放以抵制方差模型的预期均方误差。自然地,缩放比例改善了与噪声因子相关的模型部分的拟合度。但是,表明这种缩放比例不会改变噪声因子的方差贡献,这对于鲁棒参数设计至关重要。第二种方法将由于噪声因素引起的方差与由于拟合模型的预测误差引起的方差相结合(即,它着眼于预测的方差),因此考虑了问题中存在的所有可变性来源。建立了该组合方差的无偏估计量。每个过程给出两个示例。通过Myers等人(1997)最近讨论的响应的预测间隔,将第二种提议的方法与文献中推荐的双重响应方法进行了比较。在示例中发现,新程序给出了更窄的间隔(如预期的那样,改善程度取决于响应曲面模型的拟合优度,即提高50%和缩小12%)。这样获得的结果解决方案对于噪声因子和参数估计不确定性都具有鲁棒性。新的公式避免了在文献中通常的双重响应方法中可能出现的负方差值。

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