基于bp神经网络的改进DBD算法在柴油机供油系统故障诊断中的应用

Fuzhou Feng, A. Si, Wei Xing
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引用次数: 2

摘要

为了克服基于BP算法的神经网络收敛速度慢、容易陷入局部极小值等缺点,本文提出了一种新的改进算法,该算法在每个迭代步动态交换网络的梯度信息。基于遗传算法(GA)的交叉和突变思想,对delta-bar-delta (DBD)算法的学习率增量因子和交互函数进行了改进。该算法已成功应用于某型柴油机供油系统的故障诊断。
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Application of improved DBD algorithm based bp neural network on fault diagnosis for fuel supply system in a certain diesel engine
In order to overcome the drawbacks of a neural network based on back propagation (BP) algorithm, such as too slow to converge and easy to be trapped into a local minimum, a new modified algorithm is proposed in this paper, in which the grads information of the network are exchanged dynamically in each iteration step, and the increment factor of learning rate and interaction function in delta-bar-delta (DBD) algorithm are improved based on the idea of cross and mutation in Genetic algorithm (GA). The new algorithm has been applied in the fault diagnosis of a fuel supply system in a certain diesel engine successfully.
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