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Intelligent control of DC motor driven mechanical systems: a robust learning control approach

机译:直流电动机驱动的机械系统的智能控制:强大的学习控制方法

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摘要

A robust learning controller is presented for DC motor driven mechanical systems with friction. The proposed controller takes advantage of both robust and learning control approaches to learn and compensate periodic and non-periodic uncertain dynamics. In the learning controller, a set of learning rules is implemented in which three types of learnings occur: one is direct learning of desired inverse dynamics input and the other two learning of unknown linear parameters and nonlinear bounding functions in the models of system dynamics and friction. The global asymptotic stability of learning control system is shown by using the Lyapunov stability theory. Experimental data demonstrate the effectiveness of developed learning approach to tracking of DC motor driven mechanical systems. Copyright (C) 2002 John Wiley Sons, Ltd. [References: 22]
机译:针对直流电动机驱动的具有摩擦力的机械系统,提出了一种鲁棒的学习控制器。所提出的控制器利用鲁棒和学习控制方法来学习和补偿周期性和非周期性不确定动力学。在学习控制器中,实现了一组学习规则,其中发生三种类型的学习:一种是直接学习所需的逆动力学输入,另一种是学习系统动力学和摩擦模型中的未知线性参数和非线性边界函数。利用李雅普诺夫稳定性理论显示了学习控制系统的全局渐近稳定性。实验数据证明了开发的学习方法跟踪直流电动机驱动的机械系统的有效性。版权所有(C)2002 John Wiley Sons,Ltd. [引用:22]

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