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Data-Driven Iterative Learning Control for Nonlinear Discrete-Time MIMO Systems

delete2021-03-01
delete57
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OA
AI
余弦 (Xian Yu)
Z
Zhongsheng Hou *
M
Marios M. Polycarpou
L
Li Duan
DOI:10.1109/TNNLS.2020.2980588delete
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Abstract

Abstract

En 中文
This article considers the tracking control of unknown nonlinear nonaffine repetitive discrete-time multi-input multi-output systems. Two data-driven iterative learning control (ILC) schemes are designed based on two equivalent dynamic linearization data models of an unknown ideal learning controller, which exists theoretically in the iteration domain. The two control schemes provide ways of selecting learning controllers based on the complexity of the controlled nonlinear systems. The learning control gain matrixes of the two learning controllers are optimized through the steepest descent method using only the measured input-output data of the nonlinear systems. The proposed ILC approaches are pure data-driven since no model information of the controlled systems is involved. The stability and convergence of the proposed ILC approaches are rigorously analyzed under reasonable conditions. Numerical simulation and an experiment based on a Gantry-type linear motor drive system are conducted to verify the effectiveness of the proposed data-driven ILC approaches.
Keywords:
MIMO communication
Control systems
Nonlinear systems
Iterative learning control
Convergence
Robots
Task analysis
Data-driven iterative learning control (ILC)
dynamic linearization (DL)
multi-input multi-output (MIMO) system
repetitive nonlinear discrete-time system
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Journal

IEEE Transactions on Neural Networks and Learning Systems cover
IEEE Transactions on Neural Networks and Learning Systems
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Beijing Jiaotong University
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Qingdao University
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University of Cyprus
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