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Statistical process control of multistage processes with Bayesian sequential bifurcation

机译:贝叶斯顺序分叉的多阶段过程的统计过程控制

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Multistage process quality control has received much attention in the last two decades. In this article, we provide a statistical quality control scheme for multistage processes based on the state space model and Bayesian theory. The posterior probabilities of each possible fault scenario are evaluated. Whenever the fault scenario associated with the largest posterior probability exceeds certain threshold, the control chart will give out an alarm. Numerical analysis proves that the new method has satisfactory diagnosis power. Besides, detailed derivation of the fault propagation pattern of the Kalman-filtered residuals in presence of mean shifts is also presented.
机译:在过去的二十年中,多阶段过程质量控制受到了广泛的关注。在本文中,我们基于状态空间模型和贝叶斯理论提供了一个多阶段过程的统计质量控制方案。评估每种可能的故障场景的后验概率。只要与最大后验概率相关的故障场景超过某个阈值,控制图就会发出警报。数值分析表明,该方法具有令人满意的诊断能力。此外,还给出了在存在均值漂移的情况下卡尔曼滤波残差的故障传播模式的详细推导。

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