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Chinese Physics, 2007, Vol. 16(11): 3238-3243    DOI: 10.1088/1009-1963/16/11/016
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A novel hyperchaos evolved from three dimensional modified Lorenz chaotic system

Wang Fan-Zhen(王繁珍), Chen Zeng-Qiang(陈增强), Wu Wen-Juan(吴文娟), and Yuan Zhu-Zhi(袁著祉)
Department of Automation, Nankai University, Tianjin 300071, China
Abstract  This paper reports a new four-dimensional continuous autonomous hyperchaos generated from the Lorenz chaotic system by introducing a nonlinear state feedback controller. Some basic properties of the system are investigated by means of Lyapunov exponent spectrum and bifurcation diagrams. By numerical simulating, this paper verifies that the four-dimensional system can evolve into periodic, quasi-periodic, chaotic and hyperchaotic behaviours. And the new dynamical system is hyperchaotic in a large region. In comparison with other known hyperchaos, the two positive Lyapunov exponents of the new system are relatively more larger. Thus it has more complex degree.   
Keywords:  chaos      hyperchaos      four dimension chaos system      Lyapunov exponent      bifurcation diagram  
Accepted manuscript online: 
PACS:  05.45.Pq (Numerical simulations of chaotic systems)  
  02.30.Oz (Bifurcation theory)  
  05.45.Ac (Low-dimensional chaos)  

Cite this article: 

Wang Fan-Zhen(王繁珍), Chen Zeng-Qiang(陈增强), Wu Wen-Juan(吴文娟), and Yuan Zhu-Zhi(袁著祉) A novel hyperchaos evolved from three dimensional modified Lorenz chaotic system 2007 Chinese Physics 16 3238

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