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Data-Driven Model-Free Adaptive Control for a Class of MIMO Nonlinear Discrete-Time Systems

IEEE Transactions on Neural Networks · 2011 · Vol. 22(12) · pp. 2173–2188
Zhongsheng HouShangtai Jin

Abstract

In this paper, a data-driven model-free adaptive control (MFAC) approach is proposed based on a new dynamic linearization technique (DLT) with a novel concept called pseudo-partial derivative for a class of general multiple-input and multiple-output nonlinear discrete-time systems. The DLT includes compact form dynamic linearization, partial form dynamic linearization, and full form dynamic linearization. The main feature of the approach is that the controller design depends only on the measured input/output data of the controlled plant. Analysis and extensive simulations have shown that MFAC guarantees the bounded-input bounded-output stability and the tracking error convergence.

Iterative Learning Control SystemsControl Systems and IdentificationAdvanced Control Systems OptimizationControl theory (sociology)LinearizationAdaptive controlFeedback linearizationNonlinear systemController (irrigation)Bounded functionConvergence (economics)Tracking errorDiscrete time and continuous time

MeSH terms

Artificial IntelligenceFeedbackSignal Processing, Computer-AssistedDatabases, FactualNonlinear DynamicsData Mining
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References
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The Journal of the Acoustical Society of America · 1990 · 2,178 citations
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