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Root Cause Diagnosis of Process Faults Using Conditional Granger Causality Analysis and Maximum Spanning Tree

机译:使用条件格兰杰因果区分析和最大生成树诊断过程故障的诊断

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In industrial processes, various types of faults often propagate from one unit to another along information and material flows. In severe cases, fault propagation can eventually affect the entire plant, leading to the reduction in product quality and productivity, and even causing damages. In order to avoid these issues, effective root cause diagnosis is desired because the correct identification of the sources of process abnormalities is critically important for restoring the system to its normal condition in a timely manner. In recent years, the data-driven causality analysis method, such as Granger causality (GC) test, has been adopted to identify the causes of process faults. However, the conventional pairwise GC only considers the causal relationship between a pair of time series. In multivariate cases, repeated pairwise analyses are often conducted, which yet often give over-complex and misleading results. To solve this problem, in this research, the multivariate GC technique, which measures the conditional dependence between time series, is utilized to construct the causal map between process variables. In addition, the obtained causal map is further simplified by finding its maximum spanning tree, facilitating the identification of the root cause. The feasibility of the proposed method is illustrated by case studies.
机译:在工业过程中,各种类型的故障通常沿着信息和材料流从一个单元传播到另一个单元。在严重的情况下,故障传播最终会影响整个植物,导致产品质量和生产率的降低,甚至造成损害。为了避免这些问题,需要有效的根本原因诊断,因为过程异常的正确识别对于及时恢复其正常情况是至关重要的。近年来,已经采用了数据驱动的因果关系分析方法,例如格兰杰因果关系(GC)测试来确定流程故障的原因。然而,传统的成对GC仅考虑一对时间序列之间的因果关系。在多因素情况下,重复配对分析是经常进行的,这又往往会给过于复杂和误导性的结果。为了解决这个问题,在本研究中,利用测量时间序列之间的条件依赖性的多元GC技术来构建过程变量之间的因果映射。此外,通过找到其最大生成树,促进识别根本原因,进一步简化了所获得的因果映射。提出方法的可行性是通过案例研究说明的。

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