Dynamical analysis and circuit simulation of a new fractional-order hyperchaotic system and its discretization

A. M.A. El-Sayed, A. Elsonbaty, A. A. Elsadany, A. E. Matouk

Research output: Contribution to journalArticlepeer-review

44 Scopus citations

Abstract

This paper presents an analytical framework to investigate the dynamical behavior of a new fractional-order hyperchaotic circuit system. A sufficient condition for existence, uniqueness and continuous dependence on initial conditions of the solution of the proposed system is derived. The local stability of all the system's equilibrium points are discussed using fractional Routh-Hurwitz test. Then the analytical conditions for the existence of a pitchfork bifurcation in this system with fractional-order parameter less than 1/3 are provided. Conditions for the existence of Hopf bifurcation in this system are also investigated. The dynamics of discretized form of our fractional-order hyperchaotic system are explored. Chaos control is also achieved in discretized system using delay feedback control technique. The numerical simulation are presented to confirm our theoretical analysis via phase portraits, bifurcation diagrams and Lyapunov exponents. A text encryption algorithm is presented based on the proposed fractional-order system. The results show that the new system exhibits a rich variety of dynamical behaviors such as limit cycles, chaos and transient phenomena where fractional-order derivative represents a key parameter in determining system qualitative behavior.

Original languageEnglish
Article number1650222
JournalInternational Journal of Bifurcation and Chaos
Volume26
Issue number13
DOIs
StatePublished - 15 Dec 2016
Externally publishedYes

Keywords

  • chaos
  • circuit implementation
  • Fractional-order hyperchaotic system
  • Hopf bifurcation
  • pitchfork bifurcation

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