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Robust multivariate control charts based on Birnbaum-Saunders distributions

机译:基于Birnbaum-Saunders分布的鲁棒多元控制图

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Multivariate control charts are powerful and simple visual tools for monitoring the quality of a process. This multivariate monitoring is carried out by considering simultaneously several correlated quality characteristics and by determining whether these characteristics are in control or out of control. In this paper, we propose a robust methodology using multivariate quality control charts for subgroups based on generalized Birnbaum-Saunders distributions and an adapted Hotelling statistic. This methodology is constructed for Phases I and II of control charts. We estimate the corresponding parameters with the maximum likelihood method and use parametric bootstrapping to obtain the distribution of the adapted Hotelling statistic. In addition, we consider the Mahalanobis distance to detect multivariate outliers and use it to assess the adequacy of the distributional assumption. A Monte Carlo simulation study is conducted to evaluate the proposed methodology and to compare it with a standard methodology. This study reports the good performance of our methodology. An illustration with real-world air quality data of Santiago, Chile, is provided. This illustration shows that the methodology is useful for alerting early episodes of extreme air pollution, thus preventing adverse effects on human health.
机译:多元控制图是监视过程质量的强大而简单的可视化工具。通过同时考虑几个相关的质量特征并确定这些特征是处于控制状态还是失控状态来执行这种多变量监视。在本文中,我们基于广义Birnbaum-Saunders分布和经过调整的Hotelling统计量,为子组提出了使用多元质量控制图的鲁棒方法。此方法适用于控制图的第一阶段和第二阶段。我们用最大似然法估计相应的参数,并使用参数自举法来获得适应性Hotelling统计量的分布。此外,我们考虑了马氏距离来检测多元离群值,并用它来评估分布假设的充分性。进行了蒙特卡洛模拟研究,以评估所提出的方法并将其与标准方法进行比较。这项研究报告了我们方法论的良好表现。提供了带有智利圣地亚哥的实际空气质量数据的插图。该图说明该方法可用于警告极端空气污染的早期发作,从而防止对人体健康的不利影响。

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