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2-D analysis for iterative learning controller for discrete-time systems with variable initial conditions

机译:具有可变初始条件的离散时间系统的迭代学习控制器的二维分析

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In this work, an iterative learning controller applying to linear discrete-time multivariable systems with variable initial conditions is investigated based on two-dimensional (2-D) system theory. The work first introduces a 2-D tracking error system and shows the effect of tracking errors against variable initial conditions. The sufficient conditions for the convergence of the learning control rules are derived and discussed. Based on the proposed iterative learning control (ILC) rule, we have shown that the convergence of the learning rule is guaranteed with less restriction. An improved ILC rule is proposed. As a result, the convergence is robust with respect to small perturbations of the system parameters. Two numerical simulation examples are used to validate the effectiveness of the proposed methodologies.
机译:在这项工作中,基于二维(2-D)系统理论,研究了一种适用于具有可变初始条件的线性离散时间多变量系统的迭代学习控制器。该工作首先引入了二维跟踪误差系统,并显示了针对可变初始条件的跟踪误差的影响。得出并讨论了收敛学习控制规则的充分条件。基于所提出的迭代学习控制(ILC)规则,我们证明了学习规则的收敛性受到了更少的限制。提出了一种改进的ILC规则。结果,对于系统参数的小扰动,收敛是鲁棒的。使用两个数值模拟示例来验证所提出方法的有效性。

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