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Robust control charts for percentiles based on location-scale family of distributions

机译:基于位置范围分布族的百分位数的鲁棒控制图

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In this paper, robust control charts for percentiles based on location-scale family of distributions are proposed. In the construction of control charts for percentiles, when the underlying distribution of the quality measurement is unknown, we study the problem of discriminating different possible candidate distributions in the location-scale family of distributions and obtain control charts for percentiles which are insensitive to model mis-specification. Two approaches, namely, the random data-driven model selection approach and weighted modeling approach, are used to construct the robust control charts for percentiles in order to effectively monitor the manufacturing process. Monte Carlo simulation studies are conducted to evaluate the performance of the proposed robust control charts for various settings with different percentiles, false-alarm rates, and sample sizes. These proposed procedures are compared in terms of the average run length. The proposed robust control charts are applied to real data sets for the illustration of robustness and usefulness.
机译:在本文中,提出了基于位置比例分布族的百分位数鲁棒控制图。在构建百分位控制图时,当质量测量的基本分布未知时,我们研究在位置尺度分布族中区分不同可能候选分布的问题,并获得对模型错误不敏感的百分位控制图-规格。两种方法,即随机数据驱动的模型选择方法和加权建模方法,用于构建百分位的鲁棒控制图,以便有效地监控制造过程。进行了蒙特卡洛模拟研究,以评估所提出的鲁棒控制图在具有不同百分位数,错误警报率和样本大小的各种设置下的性能。这些建议的程序将根据平均运行时间进行比较。提出的鲁棒控制图应用于实际数据集,以说明鲁棒性和有用性。

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