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Fuzzy neural network diagnose expert system of engine

机译:发动机的模糊神经网络诊断专家系统

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摘要

Engine has a high chance of failure, it usually accounts for about 40% of vehicle failures. Study expert system of engine fault diagnosises that it can locate fault timely and accurately, and enhance efficiency. However, the traditional expert system has shortcomings so as inefficient inference and poor self-learning capability. The fuzzy logic and traditional neural networks are combined to form fuzzy neural networks, they are established a model of fuzzy neural network (FNN) of fault diagnosis, and that the model is applied to engine fault diagnosis, complementary advantages, to effectively enhance efficiency of inference and self-learning ability, its performance is higher than the traditional BP network.
机译:发动机发生故障的可能性很高,通常占车辆故障的40%。研究发动机故障诊断专家系统,可以及时,准确地定位故障,提高效率。但是,传统专家系统存在推理效率低,自学能力差等缺点。将模糊逻辑与传统神经网络相结合,形成模糊神经网络,建立了故障诊断的模糊神经网络模型,并将该模型应用于发动机故障诊断中,具有互补优势,有效地提高了效率。推理和自学习能力,其性能高于传统的BP网络。

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