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首页> 外文期刊>International journal of production economics >Minimal Euclidean distance chart based on support vector regression for monitoring mean shifts of auto-correlated processes
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Minimal Euclidean distance chart based on support vector regression for monitoring mean shifts of auto-correlated processes

机译:基于支持向量回归的最小欧氏距离图,用于监控自相关过程的均值漂移

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摘要

Though traditional control charts have been widely used as effective tools in statistical process control (SPC), they are not applicable in many industrial applications where the process variables are highly auto-correlated. In this study, one new minimal Euclidean distance (MED) based monitoring approach is proposed for enhancing the monitoring mean shifts of auto-correlated processes. Support vector regression (SVR) is used to predict the values of a variable in time series. Through calculating minimal Euclidean distance (MED) values over time series, a novel MED chart is developed for monitoring mean shifts, and it can provide a comprehensive and quantitative assessment for the current process state. The performance of the proposed MED control chart is evaluated based on average run length (ARL). Simulation experiments are conducted and one industrial case is illustrated to validate the effectiveness of the developed MED control chart. The analysis results indicate that the developed MED control chart is more effective than other control charts for small process mean shifts in auto-correlated processes, and it can be used as a promising tool for SPC.
机译:尽管传统的控制图已被广泛用作统计过程控制(SPC)中的有效工具,但它们不适用于过程变量高度自相关的许多工业应用。在这项研究中,提出了一种新的基于最小欧几里德距离(MED)的监测方法,以增强自相关过程的监测均值漂移。支持向量回归(SVR)用于预测时间序列中变量的值。通过计算时间序列上的最小欧几里得距离(MED)值,开发了一种新颖的MED图表来监视平均偏移,它可以为当前过程状态提供全面和定量的评估。建议的MED控制图的性能是基于平均行程长度(ARL)进行评估的。进行了仿真实验,并举例说明了一个工业案例,以验证所开发的MED控制图的有效性。分析结果表明,所开发的MED控制图对于自相关过程中的小过程均值偏移比其他控制图更有效,并且可以用作SPC的有前途的工具。

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