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A rough set-based fault ranking prototype system for fault diagnosis

机译:基于粗糙集的故障诊断原型系统

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Fault diagnosis is a complex and difficult problem that concerns effective decision-making. Carrying out timely system diagnosis whenever a fault symptom is detected would help to reduce system down time and improve the overall productivity. Due to the knowledge and experience intensive nature of fault diagnosis, the diagnostic result very much depends on the preference of the decision makers on the hidden relations between possible faults and the presented symptom. In other words, fault diagnosis is to rank the possible faults accordingly to give the engineer a practical priority to carry out the maintenance work in an efficient and orderly manner. This paper presents a rough set-based prototype system that aims at ranking the possible faults for fault diagnosis. The novel approach engages rough theory as a knowledge extraction tool to work on the past diagnostic records, which is registered in a pair-wise comparison table. It attempts to extract a set of minimal diagnostic rules encoding the preference pattern of decision-making by domain experts. By means of the knowledge acquired, the ordering of possible faults for failure symptom can then be determined. The prototype system also incorporates a self-learning ability to accumulate the diagnostic knowledge. A case study is used to illustrate the functionality of the developed prototype. Result shows that the ranking outcome of the possible faults is reasonable and sensible.
机译:故障诊断是一个复杂而困难的问题,涉及有效的决策。每当检测到故障症状时,及时进行系统诊断将有助于减少系统停机时间并提高整体生产率。由于故障诊断具有丰富的知识和经验,诊断结果在很大程度上取决于决策者对可能的故障和所显示症状之间隐藏关系的偏好。换句话说,故障诊断是对可能的故障进行相应的排序,以便使工程师在实际中具有优先权,以有效率和有序地进行维护工作。本文提出了一种基于粗糙集的原型系统,旨在对可能的故障进行排序以进行故障诊断。这种新方法将粗糙理论作为一种知识提取工具来处理过去的诊断记录,该记录记录在成对的比较表中。它尝试提取一组最小的诊断规则,这些规则对领域专家的决策偏好模式进行编码。借助所获得的知识,可以确定故障症状的可能故障的顺序。原型系统还具有自我学习能力,可以累积诊断知识。案例研究用于说明所开发原型的功能。结果表明,可能的断层排序结果是合理合理的。

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