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Adaptive iterative learning control for nonlinear pure-feedback systems with initial state error based on fuzzy approximation

机译:基于模糊逼近的具有初始状态误差的非线性纯反馈系统的自适应迭代学习控制

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摘要

In this paper, an iterative learning control strategy is presented for a class of nonlinear pure-feedback systems with initial state error using fuzzy logic system. The proposed control scheme utilizes fuzzy logic systems to learn the behavior of the unknown plant dynamics. Filtered signals are employed to circumvent algebraic loop problems encountered in the implementation of the existing controllers. Backstepping design technique is applied to deal with system dynamics. Based on the Lyapunov-like synthesis, we show that all signals in the closed-loop system remain bounded over a pre-specified time interval [0,T]. There even exist initial state errors, the norm of tracking error vector will asymptotically converge to a tunable residual set as iteration goes to infinity and the learning speed can be easily improved if the learning gain is large enough. A time-varying boundary layer is introduced to solve the problem of initial state error. A typical series is introduced in order to deal with the unknown bound of the approximation errors. Finally, two simulation examples show the feasibility and effectiveness of the approach.
机译:本文提出了一种基于模糊逻辑的具有初始状态误差的非线性纯反馈系统的迭代学习控制策略。所提出的控制方案利用模糊逻辑系统来学习未知工厂动态的行为。使用滤波后的信号来规避在现有控制器的实现中遇到的代数环路问题。应用Backstepping设计技术来处理系统动力学。基于类Lyapunov的综合,我们表明闭环系统中的所有信号在预定的时间间隔[0,T]内保持有界。甚至存在初始状态误差,当迭代达到无穷大时,跟踪误差向量的范数将渐近收敛于可调残差集,并且如果学习增益足够大,则可以轻松地提高学习速度。为了解决初始状态误差问题,引入了时变边界层。为了处理近似误差的未知范围,引入了一个典型的级数。最后,通过两个仿真实例验证了该方法的可行性和有效性。

著录项

  • 来源
    《Journal of the Franklin Institute》 |2014年第3期|1483-1500|共18页
  • 作者

    Chunli Zhang; Junmin Li;

  • 作者单位

    Department of Applied Mathematics, Xidian University, Xi'an 710071, China;

    Department of Applied Mathematics, Xidian University, Xi'an 710071, China;

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  • 正文语种 eng
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