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基于递归神经网络的转速估计器仿真研究
引用本文:刘春霞,隋关娥,武心庆. 基于递归神经网络的转速估计器仿真研究[J]. 青岛建筑工程学院学报, 2011, 0(1): 93-96
作者姓名:刘春霞  隋关娥  武心庆
作者单位:青岛港湾职业技术学院电气工程系,青岛266404
摘    要:针对硬件传感器安装、调试、维护复杂等缺点,采用了一种基于递归神经网络(recurrent neural network,RNN)的转速估计器,取代传统传感器完成转速检测任务.递归神经网络采用带遗忘因子的最小二乘(RLS)估计算法,该方法利用RNN强的非线性动态特性,可以在线训练权重,从而可以快速跟踪参数变化、负载变动等情况.最后,通过MATLAB/Simulink仿真验证了此方法的有效性.

关 键 词:递归神经网络  递推最小二乘  感应电机

Study of Speed Estimators Based on RNN
LIU Chun-xia,SUI Mei-e,WU Xin-qing. Study of Speed Estimators Based on RNN[J]. Journal of Qingdao Institute of Architecture and Engineering, 2011, 0(1): 93-96
Authors:LIU Chun-xia  SUI Mei-e  WU Xin-qing
Affiliation:(Electrical Engineering Department,Qingdao Harbour Vocational and Technical College,Qingdao 266404,China)
Abstract:In light with the weaknesses of installation,debugging,maintenance and so on of hardware sensors,a new speed estimator based on recurrent neural network is adopted to replace the conventional hardware sensors.The algorithm for recurrent least square(RLS) with forgetting factors is employed in recurrent neural network(RNN).The weights of RNN can be estimated on-line.It can track the information of the parameter variation and load variation.The effectiveness of the proposed method is verified through the MATLAB and Simulink model.
Keywords:recurrent neural network  recurrent least square  induction motor
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