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Noise Tolerant Iterative Learning Control and Identification for Continuous-Time Systems With Unknown Bounded Input Disturbances

机译:具有未知有界输入扰动的连续时间系统的耐噪迭代学习控制和识别

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摘要

This paper considers the problems of both noise tolerant iterative learning control (ILC) and iterative identification for a class of continuous-time systems with unknown bounded input disturbance and measurement noise. To this aim, we first propose a formulation of an extended ILC scheme using sampled input/output (I/O) data. The proposed ILC method has distinctive features as follows. Its learning law works in a prescribed finite-dimensional parameter space and employs I/O data of all past trials efficiently. Also, the time derivative of tracking error is not required. Then, it is presented how the uncertain parameters can be identified by using the proposed ILC algorithm and how robust it is against measurement noise through a numerical example. Furthermore, its experimental evaluation is performed to demonstrate the effectiveness of the proposed identification scheme.
机译:本文针对一类未知边界输入扰动和测量噪声的连续时间系统,考虑了噪声容忍迭代学习控制(ILC)和迭代辨识的问题。为此,我们首先提出一种使用采样的输入/输出(I / O)数据的扩展ILC方案的提法。所提出的ILC方法具有以下独特特征。它的学习规律在规定的有限维参数空间中起作用,并有效地利用了所有以前试验的I / O数据。另外,不需要跟踪误差的时间导数。然后,通过一个数值示例,介绍了如何通过使用提出的ILC算法来识别不确定参数,以及如何抵抗测量噪声。此外,进行了实验评估以证明所提出的识别方案的有效性。

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