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Integrating multivariate engineering process control and multivariate statistical process control

机译:集成多元工程过程控制和多元统计过程控制

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Multivariate engineering process control (MEPC) and multivariate statistical process control (MSPC) are two strategies for quality improvement that have developed independently. MEPC aims to minimize variability by adjusting process variables to keep the process output on target. On the other hand, MSPC aims to reduce variability by monitoring and eliminating assignable causes of variation. In this paper, the use of MEPC alone is compared to using the MEPC coupled with MSPC. We use simulations to evaluate the average run lengths (ARL) and the averages of the performance measure. The simulation results show that the use of both MEPC and MSPC can always outperform the use of either alone. To detect small sustained shifts of the mean vector, combing MEPC with a multivariate generally weighted moving average (MGWMA) chart (MEPC/MGWMA) is more sensitive than the MEPC/multivariate exponentially weighted moving average (MEWMA) chart and MEPC/Hotelling's x{sup}2 chart. An example of the application, based on the proposed method, is also given.
机译:多元工程过程控制(MEPC)和多元统计过程控制(MSPC)是独立开发的两种质量改进策略。 MEPC旨在通过调整过程变量以使过程输出保持在目标水平上来最大程度地减少可变性。另一方面,MSPC旨在通过监视和消除可指定的变化原因来减少变化。在本文中,将单独使用MEPC与结合使用MEPC和MSPC进行了比较。我们使用模拟来评估平均游程长度(ARL)和性能指标的平均值。仿真结果表明,同时使用MEPC和MSPC总是可以胜过单独使用两者。为了检测均值向量的小幅持续变动,将MEPC与多元一般加权移动平均值(MGWMA)图(MEPC / MGWMA)结合使用比MEPC /多元指数加权移动平均值(MEWMA)图和MEPC / Hotelling的x { sup} 2图表。还给出了基于所提出的方法的应用示例。

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