输入饱和非线性系统的自适应迭代学习可靠控制

Ruikun Zhang, R. Chi
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引用次数: 0

摘要

本文采用自适应迭代学习控制方法研究了输入饱和非线性系统的可靠控制策略。系统动态函数由一类具有输入饱和和执行器故障的非线性参数化函数来描述。为了解决系统非线性、输入饱和和执行器故障项等问题,设计了自适应迭代学习可靠控制器(AILRC),这是一种反馈p型ILC控制器。基于所构造的复合能量函数(CEF)和一些必要的假设,给出了收敛性分析,表明当迭代次数趋于无穷时,系统跟踪误差收敛于零。最后通过仿真验证了所提AILRC的正确性。
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Reliable Control of Nonlinear System with Input Saturation by Adaptive Iterative Learning Control
In this paper, reliable control strategy is studied for nonlinear system with input saturation by adaptive iterative learning control. The system dynamic function is described by a class of nonlinearly parameterized functions with input saturation and actuator faults. In order to address nonlinearity of system, input saturation and the actuator fault term, we design the adaptive iterative learning reliable controller (AILRC), which is a feedback P-type ILC controller. Based on the constructed composite energy function (CEF) and some necessary assumptions, the convergence analysis is given, which shows that the system tracking error converges to zero when the iteration number tends to infinity. Finally, simulation is given to illustrate the correctness of the proposed AILRC.
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