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Comparison Of Analysis Strategies For Screening Designs In Large-scale Computer Simulation Models

机译:大型计算机仿真模型中筛选设计分析策略的比较

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In large-scale computer simulation models it is often necessary to perform a screening experiment to reduce the number of factors to be examined in subsequent analysis. This study evaluated the results of a Plackett-Burman screening design using three different analysis strategies: 1) an approach due to Box and Meyer (1993); 2) an approach due to Harnada and Wu (1992); and 3) a standard Response Surface Methodology (RSM) approach. These strategies or methodologies were used to identify the active/significant factors across 17 different model outputs. The results from these three methodologies were then compared against each other for any notable differences in the identified significant factors. In one instance, where there was a notable difference, further analysis was performed in an attempt to ascertain which methodology was the best predictor for that specific response. A Resolution V design was used in this subsequent analysis to produce a validation model, which was then used to compare the three initial analysis strategies. The strategy/methodology that produced the model with the smallest mean absolute percent error (MAPE), the measurement criteria, was selected as the best for that response.
机译:在大型计算机仿真模型中,通常需要进行筛选实验,以减少随后分析中检查的因素的数量。本研究评估了使用三种不同的分析策略的Plackett-Burman筛选设计的结果:1)由于框和Meyer(1993)而导致的方法; 2)由于Harnada和Wu(1992)(1992年)的一种方法; 3)标准响应表面方法(RSM)方法。这些策略或方法用于识别跨17种不同模型输出的主动/重要因素。然后将这三种方法的结果彼此进行比较,以便在所识别的重要因素中的任何显着差异进行比较。在一个例子中,在存在值得注意的情况下,进行进一步的分析,以确定哪种方法是该特定响应的最佳预测因子。在此后续分析中使用分辨率V设计以产生验证模型,然后用于比较三个初始分析策略。选择具有最小平均值误差(MAPE),测量标准的模型的策略/方法是最适合该响应的最佳选择。

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