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Fault Diagnosis of Shield Machine Based on SOM-BP Neural Network Fusion

机译:基于SOM-BP神经网络融合的盾构机故障诊断

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In view of the potential operation harms caused by manual checking construction faults of shield, a method to diagnose construction faults of shield is proposed based on neural network(NN) information fusion. The parameters of shield excavation are as the input of self-organizing feature maps(SOM) to perform partial fusion. Then the output of SOM is as the input of back propagation(BP) network to complete final fusion. The construction faults of shield can be diagnosed according the results of final fusion. The analysis of an illustrating example indicates that the proposed method is more effective and feasible. The diagnosis results can be a beneficial guidance for online-diagnosing the construction faults of shield.
机译:针对人工检查盾构施工故障可能带来的危害,提出了一种基于神经网络信息融合的盾构施工故障诊断方法。盾构开挖的参数作为自组织特征图(SOM)的输入,以进行部分融合。然后将SOM的输出作为反向传播(BP)网络的输入以完成最终融合。最终融合的结果可以诊断出盾构的施工故障。实例分析表明,该方法更加有效,可行。诊断结果可为在线诊断盾构施工故障提供有益的指导。

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