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首页> 外文期刊>International Journal of Control >Robust iterative learning control for linear systems with multiple time-invariant parametric uncertainties
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Robust iterative learning control for linear systems with multiple time-invariant parametric uncertainties

机译:具有多个时不变参数不确定性的线性系统的鲁棒迭代学习控制

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摘要

This article presents a novel robust iterative learning control algorithm (ILC) for linear systems in the presence of multiple time-invariant parametric uncertainties.The robust design problem is formulated as a min-max problem with a quadratic performance criterion subject to constraints of the iterative control input update. Then, we propose a new methodology to find a sub-optimal solution of the min-max problem. By finding an upper bound of the worst-case performance, the min-max problem is relaxed to be a minimisation problem. Applying Lagrangian duality to this minimisation problem leads to a dual problem which can be reformulated as a convex optimisation problem over linear matrix inequalities (LMIs). An LMI-based ILC algorithm is given afterward and the convergence of the control input as well as the system error are proved. Finally, we apply the proposed ILC to a generic example and a distillation column. The numerical results reveal the effectiveness of the LMI-based algorithm.
机译:本文针对存在多个时不变参数不确定性的线性系统提出了一种新颖的鲁棒迭代学习控制算法(ILC),将鲁棒设计问题表述为具有迭代约束的二次性能准则的最小极大问题。控制输入​​更新。然后,我们提出了一种新的方法来找到最小-最大问题的次优解决方案。通过找到最坏情况下的性能上限,最小-最大问题可以轻松化为最小化问题。将拉格朗日对偶应用于此最小化问题会导致一个对偶问题,可以将其重新构造为关于线性矩阵不等式(LMI)的凸优化问题。给出了基于LMI的ILC算法,证明了控制输入的收敛性以及系统误差。最后,我们将提出的ILC应用于一般示例和蒸馏塔。数值结果表明了基于LMI的算法的有效性。

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