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Distributed proportional-spatial derivative control of nonlinear parabolic systems via fuzzy PDE modeling approach

    Research output: Journal Publications and ReviewsRGC 22 - Publication in policy or professional journal

    Abstract

    In this paper, a distributed fuzzy control design based on Proportional-spatial Derivative (P-sD) is proposed for the exponential stabilization of a class of nonlinear spatially distributed systems described by parabolic partial differential equations (PDEs). Initially, a Takagi-Sugeno (T-S) fuzzy parabolic PDE model is proposed to accurately represent the nonlinear parabolic PDE system. Then, based on the T-S fuzzy PDE model, a novel distributed fuzzy P-sD state feedback controller is developed by combining the PDE theory and the Lyapunov technique, such that the closed-loop PDE system is exponentially stable with a given decay rate. The sufficient condition on the existence of an exponentially stabilizing fuzzy controller is given in terms of a set of spatial differential linear matrix inequalities (SDLMIs). A recursive algorithm based on the finite-difference approximation and the linear matrix inequality (LMI) techniques is also provided to solve these SDLMIs. Finally, the developed design methodology is successfully applied to the feedback control of the Fitz-Hugh-Nagumo equation. © 2012 IEEE.
    Original languageEnglish
    Article number6148292
    Pages (from-to)927-938
    JournalIEEE Transactions on Systems, Man, and Cybernetics, Part B: Cybernetics
    Volume42
    Issue number3
    DOIs
    Publication statusPublished - 2012

    Research Keywords

    • Exponential stability
    • fuzzy control
    • linear matrix inequalities (LMIs)
    • spatially distributed systems (SDSs)
    • Takagi-Sugeno (T-S) fuzzy model

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