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An Exploration on Adaptive Iterative Learning Control for a Class of Commensurate High-order Uncertain Nonlinear Fractional Order Systems 被引量:4
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作者 Jianming Wei Youan Zhang Hu Bao 《IEEE/CAA Journal of Automatica Sinica》 SCIE EI CSCD 2018年第2期618-627,共10页
This paper explores the adaptive iterative learning control method in the control of fractional order systems for the first time. An adaptive iterative learning control(AILC) scheme is presented for a class of commens... This paper explores the adaptive iterative learning control method in the control of fractional order systems for the first time. An adaptive iterative learning control(AILC) scheme is presented for a class of commensurate high-order uncertain nonlinear fractional order systems in the presence of disturbance.To facilitate the controller design, a sliding mode surface of tracking errors is designed by using sufficient conditions of linear fractional order systems. To relax the assumption of the identical initial condition in iterative learning control(ILC), a new boundary layer function is proposed by employing MittagLeffler function. The uncertainty in the system is compensated for by utilizing radial basis function neural network. Fractional order differential type updating laws and difference type learning law are designed to estimate unknown constant parameters and time-varying parameter, respectively. The hyperbolic tangent function and a convergent series sequence are used to design robust control term for neural network approximation error and bounded disturbance, simultaneously guaranteeing the learning convergence along iteration. The system output is proved to converge to a small neighborhood of the desired trajectory by constructing Lyapnov-like composite energy function(CEF)containing new integral type Lyapunov function, while keeping all the closed-loop signals bounded. Finally, a simulation example is presented to verify the effectiveness of the proposed approach. 展开更多
关键词 Index Terms-Adaptive iterative learning control (AILC) boundary layer function composite energy function (CEF) frac-tional order differential learning law fractional order nonlinearsystems Mittag-Leffler function.
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基于观测器和事件触发的分数阶非线性系统神经网络控制
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作者 游星星 陶栩 +3 位作者 郭斌 向国菲 刘凯 佃松宜 《控制理论与应用》 EI CAS CSCD 北大核心 2024年第10期1735-1744,共10页
针对一类分数阶非线性系统的跟踪控制问题,本文提出了一种自适应神经网络事件触发控制方案.首先,利用径向基函数神经网络来逼近未知的非线性函数,构造了基于神经网络的状态观测器估计原系统状态.然后,在控制器设计中引入了事件触发策略... 针对一类分数阶非线性系统的跟踪控制问题,本文提出了一种自适应神经网络事件触发控制方案.首先,利用径向基函数神经网络来逼近未知的非线性函数,构造了基于神经网络的状态观测器估计原系统状态.然后,在控制器设计中引入了事件触发策略,通过Lyapunov方法分析了闭环系统的稳定性.本文提出了一个新条件来估计事件触发条件的时间间隔下限,避免了Zeno现象.理论分析表明,提出的控制方案不仅能确保跟踪误差收敛到原点附近的邻域内,而且保证了闭环系统中所有信号的有界性.最后,分数阶互联电力系统仿真展示了方案的有效性. 展开更多
关键词 分数阶非线性系统 观测器 神经网络控制 事件触发控制 动态面控制
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