Spectral Rigidity and Geometric Localization of Hopf Bifurcations in Planar Predator-Prey Systems

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Main Authors: Chan-López, E., Martín-Ruiz, A., Castellanos, Víctor
Format: Preprint
Published: 2026
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author Chan-López, E.
Martín-Ruiz, A.
Castellanos, Víctor
author_facet Chan-López, E.
Martín-Ruiz, A.
Castellanos, Víctor
contents We identify a geometric principle governing the location of Hopf and Bogdanov--Takens bifurcations in planar predator--prey systems. The prey coordinate of any coexistence equilibrium undergoing such a bifurcation lies between consecutive critical points of the prey nullcline. The mechanism is algebraic. At critical points of the nullcline, the vanishing of its derivative induces constraints on the Jacobian that prevent the spectral conditions required for bifurcation from being satisfied. We refer to this phenomenon as \emph{spectral rigidity}. The principle is established for three model families and one discrete counterpart with qualitatively different nullcline geometries: a quadratic case (Bazykin model), a cubic case (Holling type~IV with harvesting), and a rational case (Crowley--Martin functional response). In each case, the localization follows from explicit parametric characterizations and symbolic reduction. The analysis extends to discrete-time systems. For a map obtained by forward Euler discretization of the Crowley--Martin model, the Neimark--Sacker bifurcation occurs on the descending branch of the nullcline, providing a continuous--discrete duality governed by the same mechanism. We conjecture that this localization holds for general smooth prey nullclines, with critical points acting as spectral barriers that organise the bifurcation structure.
format Preprint
id arxiv_https___arxiv_org_abs_2603_24418
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Spectral Rigidity and Geometric Localization of Hopf Bifurcations in Planar Predator-Prey Systems
Chan-López, E.
Martín-Ruiz, A.
Castellanos, Víctor
Dynamical Systems
Mathematical Physics
Chaotic Dynamics
We identify a geometric principle governing the location of Hopf and Bogdanov--Takens bifurcations in planar predator--prey systems. The prey coordinate of any coexistence equilibrium undergoing such a bifurcation lies between consecutive critical points of the prey nullcline. The mechanism is algebraic. At critical points of the nullcline, the vanishing of its derivative induces constraints on the Jacobian that prevent the spectral conditions required for bifurcation from being satisfied. We refer to this phenomenon as \emph{spectral rigidity}. The principle is established for three model families and one discrete counterpart with qualitatively different nullcline geometries: a quadratic case (Bazykin model), a cubic case (Holling type~IV with harvesting), and a rational case (Crowley--Martin functional response). In each case, the localization follows from explicit parametric characterizations and symbolic reduction. The analysis extends to discrete-time systems. For a map obtained by forward Euler discretization of the Crowley--Martin model, the Neimark--Sacker bifurcation occurs on the descending branch of the nullcline, providing a continuous--discrete duality governed by the same mechanism. We conjecture that this localization holds for general smooth prey nullclines, with critical points acting as spectral barriers that organise the bifurcation structure.
title Spectral Rigidity and Geometric Localization of Hopf Bifurcations in Planar Predator-Prey Systems
topic Dynamical Systems
Mathematical Physics
Chaotic Dynamics
url https://arxiv.org/abs/2603.24418