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Bayesian fault identification of multistage processes

机译:多阶段过程的贝叶斯故障识别

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摘要

Multistage process fault identification have received much attention recently. In this article, we focus on identifying faults in multistage processes that affect the process mean vector. The new method utilizes Bayesian theory and evaluates the posterior probability of each possible fault scenarios. The scenario associated with the largest posterior probability is identified. Numerical analysis proves that the new method has satisfactory diagnosis power and accuracy.
机译:近来,多级过程故障识别已引起广泛关注。在本文中,我们着重于确定影响过程均值向量的多阶段过程中的故障。该新方法利用贝叶斯理论并评估了每种可能断层情况的后验概率。确定与最大后验概率相关的场景。数值分析表明,该方法具有令人满意的诊断能力和准确性。

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