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A fuzzy inference system for fault detection and isolation: Application to a fluid system

机译:用于故障检测和隔离的模糊推理系统:在流体系统中的应用

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This work focuses on the design and implementation of a fuzzy inference system for fault detection and isolation (FDI) which can learn from example fault data, and the determination of a suitable optimisation strategy for the membership functions. A FDI system was developed which is based on adaptive fuzzy rules. A number of optimisation strategies were then applied; it was found that an evolutionary algorithm not only produced the best results but did so with relatively little processing effort and with excellent consistency.rnThe adaptive fuzzy system, thus optimised, was tested against a neural network, which was trained to produce analogue outputs as an indication of fault magnitude. The fuzzy solution produced the best accuracy.rnWe can conclude that an adaptive fuzzy inference system for FDI, using an evolutionary algorithm to learn from examples, can provide an accurate and readily comprehensible solution to diagnosing and evaluating fluid process plant faults.
机译:这项工作着重于故障检测和隔离(FDI)的模糊推理系统的设计和实现,该系统可以从示例故障数据中学习,并为成员函数确定合适的优化策略。开发了基于自适应模糊规则的FDI系统。然后应用了许多优化策略。结果发现,进化算法不仅产生了最佳结果,而且以相对较少的处理工作量和出色的一致性实现了这一目标。针对神经网络对经过优化的自适应模糊系统进行了测试,该神经网络经过训练后可以产生模拟输出。故障幅度的指示。模糊解决方案产生了最高的精度。我们可以得出结论,采用进化算法从实例中学习的FDI自适应模糊推理系统可以为诊断和评估流体过程工厂故障提供准确而易于理解的解决方案。

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