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基于神经网络优化法的故障诊断应用研究
引用本文:张旭,徐玉秀,刘恩东. 基于神经网络优化法的故障诊断应用研究[J]. 沈阳工业大学学报, 2004, 26(3): 313-315
作者姓名:张旭  徐玉秀  刘恩东
作者单位:1. 沈阳工业大学,辽宁,沈阳,110023
2. 鞍钢热轧带厂,辽宁,鞍山,114000
摘    要:在机械设备的故障诊断中,常采用BP网络算法对故障进行诊断计算,但由于BP网络易于收敛于局部极小点,且在初始参数与网络结构选取不当时。网络将出现发散现象.为此提出了将神经网络优化算法应用于汽轮发电机组的故障诊断中,实现了神经网络权值和阈值的快速计算,并以汽轮发电机组的故障诊断为背景。将两种算法的结果进行比较,证明该方法比BP算法精度高且收敛速度快、可靠性好.

关 键 词:鲍威尔优化快速算法 神经网络 故障诊断
文章编号:1000-1646(2004)03-0313-03
修稿时间:2002-11-19

Comparison between powell algorithm and BP algorithm in training neural network
ZAHNG Xu,XU Yu-xiu,LIU En-dong. Comparison between powell algorithm and BP algorithm in training neural network[J]. Journal of Shenyang University of Technology, 2004, 26(3): 313-315
Authors:ZAHNG Xu  XU Yu-xiu  LIU En-dong
Affiliation:ZAHNG Xu~1,XU Yu-xiu~1,LIU En-dong~2
Abstract:BP algorithm is often used in faults diagnosis of mechanical equipment.But BP network is apt to converge at the local minimum point.And,if the selected original parameters and network structure are not suitable,the divergent phenomenon will turn up in the network.SO this article advances that the neural network optimization algorithm is used in faults diagnosis of the steam generating set (rotating mechanical equipment),and the fast calculation in weights values and threshold values of neural network are gained.The neural network optimization algorithm result is compared with BP network algorithm result.It is shown that this method is faster and has higher accuracy than BP algorithm,and the neural network is absolutedly,convergent.
Keywords:Powell fast optimization algorithm  neural network  faults diagnosis
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