4.7 Article

Distorted stability pattern and chaotic features for quantized prey-predator-like dynamics

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PHYSICAL REVIEW E
卷 107, 期 4, 页码 -

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AMER PHYSICAL SOC
DOI: 10.1103/PhysRevE.107.044201

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This paper investigates the nonequilibrium and instability features of prey-predator-like systems associated with topological quantum domains emerging from a quantum phase-space description. By reporting the generalized Wigner flow for one-dimensional Hamiltonian systems, the prey-predator dynamics driven by Lotka-Volterra equations is mapped onto the Heisenberg-Weyl noncommutative algebra. The result shows that the equilibrium and stability parameters for the prey-predator-like dynamics are affected by quantum distortions, quantified in terms of Wigner currents and Gaussian ensemble parameters.
Nonequilibrium and instability features of prey-predator-like systems associated to topological quantum do-mains emerging from a quantum phase-space description are investigated in the framework of the Weyl-Wigner quantum mechanics. Reporting about the generalized Wigner flow for one-dimensional Hamiltonian systems, H(x, k), constrained by partial differential 2H/ partial differential x partial differential k = 0, the prey-predator dynamics driven by Lotka-Volterra (LV) equations is mapped onto the Heisenberg-Weyl noncommutative algebra, [x, k] = i, where the canonical variables x and k are related to the two-dimensional LV parameters, y = e-x and z = e-k. From the non-Liouvillian pattern driven by the associated Wigner currents, hyperbolic equilibrium and stability parameters for the prey-predator-like dynamics are then shown to be affected by quantum distortions over the classical background, in correspondence with nonstationarity and non-Liouvillianity properties quantified in terms of Wigner currents and Gaussian ensemble parameters. As an extension, considering the hypothesis of discretizing the time parameter, nonhyper-bolic bifurcation regimes are identified and quantified in terms of z - y anisotropy and Gaussian parameters. The bifurcation diagrams exhibit, for quantum regimes, chaotic patterns highly dependent on Gaussian localization. Besides exemplifying a broad range of applications of the generalized Wigner information flow framework, our results extend, from the continuous (hyperbolic regime) to discrete (chaotic regime) domains, the procedure for quantifying the influence of quantum fluctuations over equilibrium and stability scenarios of LV driven systems.

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