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A Weighted Prediction-based Selection Criterion for Response Surface Designs

机译:响应曲面设计的基于加权预测的选择准则

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The goal of response surface designs is typically to make precise predictions. A commonly used prediction-based design selection criterion is V-optimality, which seeks designs that minimize the average prediction variance over the entire experimental region. We propose an alternative criterion, which seeks designs that yield small prediction variances particularly in those parts of the experimental region where a response is expected to be interesting, important, or desirable. The new criterion is a weighted V-optimality criterion, which attaches higher weights to areas with such interesting outcomes. The weights in the new criterion are derived from a logistic regression model. We illustrate the value of the new criterion using an example from the automotive industry.
机译:响应面设计的目标通常是进行精确的预测。常用的基于预测的设计选择准则是V优化,它寻求在整个实验区域内使平均预测方差最小的设计。我们提出了一种替代标准,该标准旨在寻求产生较小预测差异的设计,尤其是在预期响应有趣,重要或理想的实验区域的那些部分。新准则是加权V最优准则,它将更高的权重赋予具有如此有趣结果的区域。新标准中的权重是从逻辑回归模型得出的。我们以汽车行业为例来说明新标准的价值。

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