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Improvement of a Tool for the Easy Determination of Control Factor Interaction in the Design of Experiments and the Taguchi Methods

机译:实验设计和田口方法中易于确定控制因素相互作用的工具的改进

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In recent years, the Design of Experiments (hereafter, DOE) have been widely used to decide optimum processing conditions. However, when large interactions between several control factors are present, since they behave as confounding variables, the estimation accuracy is significantly reduced and making the practical use of the DOE extremely difficult in some cases. As a common countermeasure, calculation accuracy is confirmed by comparing, through the final results, the best and worst results. This can be of great harm in terms of time and labor and, if the difference between the best and worst results is large, could result in the DOE estimations being ignored. Therefore, in previous studies, a usable tool for the easy determination of control factor interactions in the DOE was developed; here, said tool was able to determine control factor interactions in the DOE through several mathematical models. This research presented an improvement to the previous tool through an improved algorithm and more detailed mathematical models to evaluate complex control factor interactions. It was concluded that, (1) an improved tool for the determination of control factor interactions in the DOE and the Taguchi Methods was developed, (2) the tool was able to detect previously indistinguishable complex control factor interactions in the DOE or the Taguchi Methods, (3) a new algorithm was able to determine complex control factor interactions in models between control factors and functions.
机译:近年来,实验设计(以下称为DOE)已被广泛用于确定最佳处理条件。但是,当几个控制因素之间存在较大的相互作用时,由于它们表现为混杂变量,因此估计准确性显着降低,在某些情况下,DOE的实际使用变得极为困难。作为一种常见的对策,通过将最终结果与最佳和最差结果进行比较,可以确定计算的准确性。就时间和劳力而言,这可能会造成极大危害,并且如果最佳结果与最差结果之间的差异很大,则可能会导致DOE估计被忽略。因此,在先前的研究中,开发了一种可轻松确定DOE中控制因子相互作用的有用工具。在这里,该工具能够通过几种数学模型确定DOE中的控制因素相互作用。这项研究通过改进的算法和更详细的数学模型来评估复杂的控制因素相互作用,对以前的工具进行了改进。结论是:(1)开发了一种确定DOE和Taguchi方法中控制因子相互作用的改进工具,(2)该工具能够检测DOE或Taguchi方法中以前无法区分的复杂控制因子相互作用。 ,(3)一种新算法能够确定模型中控制因素和功能之间的复杂控制因素相互作用。

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