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A novel fault diagnosis technology and its application based on neural network multi-sensor information fusion

机译:一种新型故障诊断技术及其基于神经网络多传感器信息融合的应用

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摘要

To solve the traditional fault diagnosis can not be adapted to the complicated system, a kind of new multi-sensor fusion fault diagnosis method is presented. The method applies the theory of genetic algorithms and fuzzy logic to the BP (back propagation) neural network. Combined with BP and GA, it walks in several steps. Firstly, the best individual is chosen in current population and trained in order to make object error quickly fall and determine the search direction. Secondly, the best individual crosses with the other individual after BP training. Thirdly, the current best individual that is chosen in crossover reproduction and the original best individual are trained in next cycle. Experiment results show that the fault diagnosis accuracy is improved effectively by this method.
机译:要解决传统的故障诊断不能调整到复杂的系统,提出了一种新的多传感器融合故障诊断方法。该方法将遗传算法理论应用于BP(后传播)神经网络的基因算法和模糊逻辑。结合BP和GA,它走过几步。首先,最好的个体被选中在当前的人口中并训练,以便使物体误差快速下降并确定搜索方向。其次,在BP培训后,最好的个人与其他个人交叉。第三,在交叉再现和原始最佳个人中选择的最佳个人在下一个周期中培训。实验结果表明,该方法有效地提高了故障诊断精度。

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