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Monitoring of Proportional-Integral Controlled Processes using a Bayesian Time Series Analysis Method

机译:使用贝叶斯时间序列分析方法监控比例积分控制过程

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Recently, there has been interest in applying statistical process monitoring methods to processes controlled with feedback controllers in order to eliminate assignable causes and achieve reduced overall variability. In this paper, we propose a Bayesian change-point method to monitor processes regulated with proportional-integral controllers. The approach is based on fitting an exponential rise model to the control input actions in response to a step shift and employs a change-point method to detect the change. Simulation studies show that the proposed method has better run-length performance in detecting step shifts in controlled processes than Shewhart chart on individuals and special-cause chart on residuals of time series model.
机译:近来,人们有兴趣将统计过程监视方法应用于由反馈控制器控制的过程,以便消除可分配的原因并实现总体可变性的降低。在本文中,我们提出了一种贝叶斯变化点方法来监视由比例积分控制器调节的过程。该方法基于响应于步阶变化将指数上升模型拟合到控制输入动作,并采用变化点方法来检测变化。仿真研究表明,该方法在检测受控过程中的步移方面比在个人上的Shewhart图和在时间序列模型残差上的特殊原因图具有更好的行程长度性能。

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