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Fault template extraction to assist operators during industrial alarm floods

机译:故障模板提取可在工业警报洪灾期间协助操作员

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摘要

In industrial systems, a fault occurring on a process can create an alarm flood, a succession of alarms raised at a rate per minute so high it overwhelms the process operator in charge of the monitoring of the process. In this paper, a method to extract fault templates from a set of alarm lists raised on the occurrence of several faults is proposed. Alarm lists generated by the same fault are condensed into a weighted sequential fault template formed of the sequence of alarms the most frequently produced on the occurrence of the fault. Each alarm is weighted according to its relevance to diagnose the fault It is further shown how the fault templates can be used to extract relevant information on the alarm system and be used by operators as guidelines for fault diagnosis. Moreover, an on line fault isolation method using a weighted sequential similarity measure is proposed. The results obtained by the method on a data set formed of alarm lists raised by the control system of the CERN LHC connected to a simulator of one of the LHC processes are presented and discussed.
机译:在工业系统中,过程中发生的故障会引起警报泛滥,以每分钟的速率发出的一系列警报是如此之高,以至于使负责过程监控的过程操作员不堪重负。本文提出了一种从多个故障发生时引发的警报列表中提取故障模板的方法。由同一故障生成的警报列表被压缩到一个加权顺序故障模板中,该模板由故障发生时最频繁产生的警报序列构成。根据每个警报的相关性对每个警报进行加权,以进一步诊断故障。进一步说明了如何使用故障模板提取警报系统上的相关信息,并由操作员用作故障诊断的准则。此外,提出了一种使用加权顺序相似度度量的在线故障隔离方法。提出并讨论了通过该方法在由警报列表形成的数据集上获得的结果,该警报列表由与LHC过程之一的模拟器相连的CERN LHC的控制系统提出。

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