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Work-in-Progress: A Probabilistic Approach to Discover Optimal Remedy Scheme for Industrial Diagnosis System

机译:进行中:发现工业诊断系统最佳补救方案的概率方法

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This paper presents an approach on cause and remedy diagnosis of system failures for general industrial purposes. We identify symptoms of failure in the system (which are captured using sensor data) and predict faulty components associated with the symptoms. The probabilistic engine computes the cost of remedy with and without testing of components and arrives at an optimal remedy scheme, the order in which components are to be fixed. After each component is remedied, the system is tested for its condition until it attains the working state. An application of this approach is explained with car starting mechanism. Our approach uses Bayesian Network as the probabilistic engine to arrive at optimal remedy scheme.
机译:本文提出了一种用于一般工业用途的系统故障原因和补救诊断方法。我们确定系统中的故障症状(使用传感器数据捕获),并预测与症状相关的故障组件。概率引擎在有无组件测试的情况下计算补救成本,并得出最佳补救方案,即固定组件的顺序。维修完每个组件后,将测试系统的状况,直到达到工作状态为止。通过汽车启动机制说明了这种方法的应用。我们的方法使用贝叶斯网络作为概率引擎来获得最佳补救方案。

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