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基于Davidon算法的神经元自适应控制器
引用本文:陈增强,卢钊,袁著祉. 基于Davidon算法的神经元自适应控制器[J]. 系统工程与电子技术, 2000, 22(7): 47-49
作者姓名:陈增强  卢钊  袁著祉
作者单位:南开大学计算机与系统科学系,天津,300071
基金项目:国家“8 63”/CIMS研究基金资助课题!(863 - 51 1 - 945 - 0 1 0 ),天津市自然科学基金资助课题!(98360 2 0 1 1 ),教育部骨干教师基
摘    要:通常的神经网络逆元自适应控制器存在两个缺陷 ,一是训练算法收敛过慢 ;二是无法控制非最小相位系统 ,因而限制了其使用范围。利用Davidon最小二乘法训练多层前馈网络 ,用于逼近被控对象的逆模型 ,并利用构造伪系统的方法 ,构成一种对非最小相位系统仍然有效的神经网络逆元自适应控制器。仿真结果表明了该方法的有效性

关 键 词:自适应控制  最小二乘法  非线性系统  神经  网络
修稿时间:1999-09-20

Neural-Net Adaptive Controller Based on Davidon Algorithm
Chen Zengqiang,Lu Zhao,Yuan Zhuzhi. Neural-Net Adaptive Controller Based on Davidon Algorithm[J]. System Engineering and Electronics, 2000, 22(7): 47-49
Authors:Chen Zengqiang  Lu Zhao  Yuan Zhuzhi
Abstract:General neural network inverse adaptive controller has two flaws: the first is the slow convergence speed; the second is the invalidation to the non-minimum phase system. These defects limit the scope in which the neural network inverse adaptive controller is used. We employ Davidon least square in training the multi-layer feedforward neural network used in approximating the inverse model of plant to expedite the convergence, and then through constructing the pseudo-plant, a neural network inverse adaptive controller is put forward which is still effective to the nonlinear non-minimum phase system. The simulation results demonstrate the validity of this scheme.;
Keywords:Adaptive control Least square method Nonlinear system Neural Network
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