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Automated maintenance path generation with Bayesian networks, influence diagrams, and timed failure propagation graphs

机译:利用贝叶斯网络,影响图和定时故障传播图自动生成维护路径

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摘要

Large and complex systems such as space vehicles, power plants, manufacturing facilities, oil refineries, gas delivery systems, among others often have networks of alarms monitoring basic parameters (e.g. high or low temperature, voltage out-of-tolerance, power loss, etc.) which are correlated to failure modes, but not necessarily in a very direct way. In this paper, we present a plurality of graph-based methods which are combined in a novel way for the automated analysis of a system's alarms (or any other observable discrepancies) to determine the most appropriate maintenance. Specifically: (i) Timed Failure Propagation Graphs (TFPG) and/or Bayesian Networks (BN) read alarms as evidence for conducing backward root-cause diagnosis and forward failure effects analysis while (ii) Influence Diagrams (ID) select optimal maintenance operations considering the likely causes and effects as well as the utility of available maintenance options. Innovative contributions to these individual techniques include an automated BN instantiation methodology and system/sensor TFPG diagnostic algorithms. The overall proposed system then determines optimal maintenance paths suggested to be conducted by personnel.
机译:大型和复杂的系统,例如航天器,发电厂,制造设施,炼油厂,输气系统等,通常都具有监视基本参数(例如高温或低温,电压超差,功率损耗等)的​​警报网络。 。)与故障模式相关,但不一定以非常直接的方式。在本文中,我们介绍了多种基于图的方法,这些方法以新颖的方式组合在一起,可以自动分析系统的警报(或任何其他可观察到的差异),以确定最合适的维护方法。具体来说:(i)定时故障传播图(TFPG)和/或贝叶斯网络(BN)读取警报,作为进行反向根本原因诊断和正向故障影响分析的证据,同时(ii)影响图(ID)选择最佳维护操作时要考虑到可能的原因和结果以及可用维护选项的实用性。这些独立技术的创新贡献包括自动BN实例化方法和系统/传感器TFPG诊断算法。然后,整个提议的系统确定建议由人员执行的最佳维护路径。

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