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首页> 外文期刊>Journal of control science and engineering >Iterative Learning Control with Forgetting Factor for Linear Distributed Parameter Systems with Uncertainty
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Iterative Learning Control with Forgetting Factor for Linear Distributed Parameter Systems with Uncertainty

机译:不确定线性分布参数系统的遗忘因子迭代学习控制

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Iterative learning control is an intelligent control algorithm which imitates human learning process. Based on this concept, this paper discussed iterative learning control problem for a class parabolic linear distributed parameter systems with uncertainty coefficients. Iterative learning control algorithm with forgetting factor is proposed and the conditions for convergence of algorithm are established. Combining the matrix theory with the basic theory of distributed parameter systems gives rigorous convergence proof of the algorithm. Finally, by using the forward difference scheme of partial differential equation to solve the problems, the simulation results are presented to illustrate the feasibility of the algorithm.
机译:迭代学习控制是一种模仿人类学习过程的智能控制算法。基于这一概念,本文讨论了具有不确定系数的一类抛物线形线性分布参数系统的迭代学习控制问题。提出了具有遗忘因子的迭代学习控制算法,并建立了收敛的条件。将矩阵理论与分布参数系统的基本理论相结合,给出了算法的严格收敛证明。最后,通过偏微分方程的正向差分方案解决了该问题,给出了仿真结果,说明了该算法的可行性。

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