4.4 Article

Adaptive neural network backstepping control for a class of uncertain fractional-order chaotic systems with unknown backlash-like hysteresis

Journal

AIP ADVANCES
Volume 6, Issue 8, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.4960110

Keywords

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Funding

  1. National Natural Science Foundation of China [11401243, 61403157]
  2. Key Research Project of Humanities and Social Science of Anhui Province of China [SK2016A1006]
  3. Key Projects of Domestic and Foreign Research and Training of Outstanding Young and Middle Aged Backbone Talents in Universities of Anhui Province of China [gxfxZD2016257]

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In this paper, we consider the control problem of a class of uncertain fractional-order chaotic systems preceded by unknown backlash-like hysteresis nonlinearities based on backstepping control algorithm. We model the hysteresis by using a differential equation. Based on the fractional Lyapunov stability criterion and the backstepping algorithm procedures, an adaptive neural network controller is driven. No knowledge of the upper bound of the disturbance and system uncertainty is required in our controller, and the asymptotical convergence of the tracking error can be guaranteed. Finally, we give two simulation examples to confirm our theoretical results. (C) 2016 Author(s).

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