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一类具有一般不确定性非线性系统的ε-跟踪 I:输出反馈鲁棒自适应控制系统的设计 被引量:1
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作者 杨昌利 阮荣耀 《华东师范大学学报(自然科学版)》 CAS CSCD 北大核心 2002年第1期9-19,共11页
该文考虑一类具有一般不确定性和参数未知的非线性系统 ,首先设计出一个稳定的状态滤波器 ,从而获得状态的实时估计 ,然后依此设计出一种用于跟踪参考信号的输出反馈鲁棒自适应控制器。仿真结果表明 ,所设计的鲁棒自适应控制系统具有良... 该文考虑一类具有一般不确定性和参数未知的非线性系统 ,首先设计出一个稳定的状态滤波器 ,从而获得状态的实时估计 ,然后依此设计出一种用于跟踪参考信号的输出反馈鲁棒自适应控制器。仿真结果表明 ,所设计的鲁棒自适应控制系统具有良好的跟踪性能 ,可以有效地解决ε 跟踪问题。 展开更多
关键词 非线性系统 不确定性 输出反馈 鲁棒自适应控制系统 ε-跟踪 系统设计 跟踪性能
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一类具有一般不确定性非线性系统的ε-跟踪 Ⅱ:输出反馈鲁棒自适应控制系统的分析
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作者 杨昌利 阮荣耀 《华东师范大学学报(自然科学版)》 CAS CSCD 北大核心 2002年第1期20-29,共10页
该文对文献 [1]所设计的输出反馈自适应控制系统进行鲁棒性分析 ;在较弱的条件下证明了该闭环系统的全局稳定性 ,还证明了输出跟踪的精度完全达到预定的要求 ,即解决了ε 跟踪问题。在仿真例子中显示出这种鲁棒自适应控制系统具有良好... 该文对文献 [1]所设计的输出反馈自适应控制系统进行鲁棒性分析 ;在较弱的条件下证明了该闭环系统的全局稳定性 ,还证明了输出跟踪的精度完全达到预定的要求 ,即解决了ε 跟踪问题。在仿真例子中显示出这种鲁棒自适应控制系统具有良好的跟踪性能 ,而且控制量在容许控制的范围之内。 展开更多
关键词 非线性系统 输出反馈 鲁棒自适应控制系统 全局稳定性 ε-跟踪 跟踪性能 性能
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Robust adaptive control for a class of uncertain non-affine nonlinear systems using neural state feedback compensation 被引量:1
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作者 赵石铁 高宪文 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第3期636-643,共8页
A robust adaptive control is proposed for a class of uncertain nonlinear non-affine SISO systems. In order to approximate the unknown nonlinear function, an affine type neural network(ATNN) and neural state feedback c... A robust adaptive control is proposed for a class of uncertain nonlinear non-affine SISO systems. In order to approximate the unknown nonlinear function, an affine type neural network(ATNN) and neural state feedback compensation are used, and then to compensate the approximation error and external disturbance, a robust control term is employed. By Lyapunov stability analysis for the closed-loop system, it is proven that tracking errors asymptotically converge to zero. Moreover, an observer is designed to estimate the system states because all the states may not be available for measurements. Furthermore, the adaptation laws of neural networks and the robust controller are given based on the Lyapunov stability theory. Finally, two simulation examples are presented to demonstrate the effectiveness of the proposed control method. Finally, two simulation examples show that the proposed method exhibits strong robustness, fast response and small tracking error, even for the non-affine nonlinear system with external disturbance, which confirms the effectiveness of the proposed approach. 展开更多
关键词 adaptive control neural networks uncertain non-affine systems state feedback Lyapunov stability
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A novel robust adaptive controller for EAF electrode regulator system based on approximate model method
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作者 李磊 毛志忠 《Journal of Central South University》 SCIE EI CAS 2012年第8期2158-2166,共9页
The electrode regulator system is a complex system with many variables, strong coupling and strong nonlinearity, while conventional control methods such as proportional integral derivative (PID) can not meet the req... The electrode regulator system is a complex system with many variables, strong coupling and strong nonlinearity, while conventional control methods such as proportional integral derivative (PID) can not meet the requirements. A robust adaptive neural network controller (RANNC) for electrode regulator system was proposed. Artificial neural networks were established to learn the system dynamics. The nonlinear control law was derived directly based on an input-output approximating method via the Taylor expansion, which avoids complex control development and intensive computation. The stability of the closed-loop system was established by the Lyapunov method. The current fluctuation relative percentage is less than ±8% and heating rate is up to 6.32 ℃/min when the proposed controller is used. The experiment results show that the proposed control scheme is better than inverse neural network controller (INNC) and PID controller (PIDC). 展开更多
关键词 approximate model electric arc furnaces nonlinear control normalized radial basis function neural network (NRBFNN)
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