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Fault Diagnosis for Distributed Cooperative System Using Inductive Logic Programming

机译:基于归纳逻辑编程的分布式协同系统故障诊断

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This paper proposes a learning and diagnosis method that can be applied immediately after a distributed system starts cooperative operation. The proposed method first learns behavioral rules for individual systems from their time series data, which are collected under independent operations. Then, anomality is detected and the system is diagnosed following the cooperative specification. The proposed method learns rules for individual systems based on ACEDIA, which is a kind of inductive logic programming; the rules are either transition rules or relationship rules that hold among variables at the same transition time. In a diagnostic phase, inconsistent rules and inconsistent specifications are obtained with ranking information against the diagnostic data, where ranking is performed through evaluation in terms of the generality on each rule and specification. We demonstrate that the proposed method correctly outputs the rules and specifications that are violated by diagnostic data. Moreover, in a case study on a simplified automotive system consisting of multiple control systems, the rules essentially related to the error were ranked higher.
机译:本文提出了一种学习和诊断方法,该方法可以在分布式系统开始协同操作后立即应用。所提出的方法首先从各个系统的时间序列数据中学习其行为规则,这些时间序列数据是在独立操作下收集的。然后,根据合作规范检测异常情况并诊断系统。所提出的方法基于ACEDIA学习单个系统的规则,这是一种归纳逻辑编程。这些规则可以是转换规则,也可以是在相同转换时间包含在变量之间的关系规则。在诊断阶段,使用针对诊断数据的排名信息获得不一致的规则和不一致的规范,其中通过评估每个规则和规范的通用性来进行排名。我们证明了所提出的方法正确输出了诊断数据所违反的规则和规范。此外,在一个由多个控制系统组成的简化汽车系统的案例研究中,与错误基本相关的规则的排名更高。

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