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Robust Adaptive Iterative Learning Control for Nonlinear Systems with Non-Repetitive Variables

机译:具有非重复变量的非线性系统的鲁棒自适应迭代学习控制

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In this work, the temporally and iteratively varying problems in iterative learning control for a class of nonlinear multiple input multiple output systems is discussed. Time-iteration-varying variables are generated by high-order internal models. Reference trajectories and system initial states are bounded and vary randomly in iteration domain. Then an operator is applied to update the estimation matrix for the whole uncertainties including non-repetitive parameters and time-varying disturbances. With the proposed adaptive iterative learning control technique, estimation error is bounded and tracking error converges to zero asymptotically. The effectiveness of the proposed control is verified through simulation study.
机译:在这项工作中,讨论了一类非线性多输入多输出系统的迭代学习控制中的时间和迭代变化问题。时变变量是由高阶内部模型生成的。参考轨迹和系统初始状态是有界的,并且在迭代域中随机变化。然后,应用运算符来更新整个不确定性的估计矩阵,包括非重复性参数和时变干扰。利用所提出的自适应迭代学习控制技术,估计误差是有界的,跟踪误差渐近收敛到零。仿真研究验证了所提出控制方法的有效性。

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