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A BRB Based Fault Prediction Method of Complex Electromechanical Systems

机译:复杂机电系统的基于BRB的故障预测方法

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摘要

Fault prediction is an effective and important approach to improve the reliability and reduce the risk of accidents for complex electromechanical systems. In order to use the quantitative information and qualitative knowledge efficiently to predict the fault, a new model is proposed on the basis of belief rule base (BRB). Moreover, an evidential reasoning (ER) based optimal algorithm is developed to train the fault prediction model. The screw failure in computer numerical control (CNC) milling machine servo system is taken as an example and the fault prediction results show that the proposed method can predict the behavior of the system accurately with combining qualitative knowledge and some quantitative information.
机译:故障预测是一种有效而重要的方法,可以提高可靠性,降低复杂机电系统事故的风险。为了有效地使用定量信息和定性知识来预测故障,基于信仰规则基础提出了一种新模型(BRB)。此外,开发了一种基于证据推理(ER)最优算法以训练故障预测模型。作为示例,计算机数控(CNC)铣床伺服系统中的螺杆故障是示例,故障预测结果表明,该方法可以通过组合定性知识和一些定量信息来准确地预测系统的行为。

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