Finite-Time Adaptive Control for a Class of Nonlinear Systems With Nonstrict Feedback Structure

This paper focuses on finite-time adaptive neural tracking control for nonlinear systems in nonstrict feedback form. A semiglobal finite-time practical stability criterion is first proposed. Correspondingly, the finite-time adaptive neural control strategy is given by using this criterion. Unlike th...

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Veröffentlicht in:IEEE transactions on cybernetics 2018-10, Vol.48 (10), p.2774-2782
Hauptverfasser: Sun, Yumei, Chen, Bing, Lin, Chong, Wang, Honghong
Format: Artikel
Sprache:eng
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Zusammenfassung:This paper focuses on finite-time adaptive neural tracking control for nonlinear systems in nonstrict feedback form. A semiglobal finite-time practical stability criterion is first proposed. Correspondingly, the finite-time adaptive neural control strategy is given by using this criterion. Unlike the existing results on adaptive neural/fuzzy control, the proposed adaptive neural controller guarantees that the tracking error converges to a sufficiently small domain around the origin in finite time, and other closed-loop signals are bounded. At last, two examples are used to test the validity of our results.
ISSN:2168-2267
2168-2275
DOI:10.1109/TCYB.2017.2749511