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The Analysis of Convergence Speed for an Open and Closed Loop Second Order Iterative Learning Control Algorithm

机译:打开和闭环二阶迭代学习控制算法的收敛速度分析

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An open-closed-loop second-order iterative learning control algorithm is investigated in the presence of the system uncertainties. Through the rigorous analysis, it is obtained that this algorithm speeds up the convergence rate of iterative learning control in the iteration domain because the closed-loop learning gain is introduced based on an open-loop iterative learning control algorithm. It is proven that this algorithm converges faster than an open-loop iterative learning control algorithm by means of a robust optimization method. Moreover, the convergence rate of the iterative learning control algorithm can be significantly accelerated by the higher closed-loop learning gain. The simulation results for a nonlinear system show the effectiveness of the algorithm.
机译:在系统不确定性的存在下研究了一个开放式闭环二阶迭代学习控制算法。通过严格的分析,获得该算法在迭代域中加速迭代学习控制的收敛速度,因为基于开环迭代学习控制算法介绍了闭环学习增益。据证明,该算法通过稳健的优化方法将比开环迭代学习控制算法更快地收敛。此外,迭代学习控制算法的收敛速率可以通过较高的闭环学习增益显着加速。非线性系统的仿真结果表明了算法的有效性。

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