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Statistical Adjustments to Engineering Models

机译:工程模型的统计调整

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Statistical models are commonly used in quality-improvement studies. However, such models tend to perform poorly when predictions are made away from the observed data points. On the other hand, engineering models derived using the underlying physics of the process do not always match satisfactorily with reality. This article proposes engineering-statistical models that overcome the disadvantages of engineering models and statistical models. The engineering-statistical model is obtained through some adjustments to the engineering model using experimental data. The adjustments are done in a sequential way and are based on empirical Bayes methods. We also develop approximate frequentist procedures for adjustments that are computationally much easier to implement. The usefulness of the methodology is illustrated using a problem of predicting surface roughness in a microcutting process and the optimization of a spot-welding process. [PUBLICATION ABSTRACT] Show less
机译:统计模型通常用于质量改进研究中。但是,当远离观察到的数据点进行预测时,此类模型的性能往往较差。另一方面,使用过程的基本物理原理得出的工程模型并不总是与实际情况令人满意地匹配。本文提出了工程统计模型,该模型克服了工程模型和统计模型的缺点。通过使用实验数据对工程模型进行一些调整,即可获得工程统计模型。调整是顺序进行的,并且基于经验贝叶斯方法。我们还开发了近似的常驻程序来进行调整,这些调整在计算上更容易实现。通过在微切削工艺中预测表面粗糙度和优化点焊工艺的问题来说明该方法的实用性。 [出版物摘要]显示较少

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