English

Hopf bifurcation and time periodic orbits in reaction-diffusion systems with pde2path - algorithms and applications

Numerical Analysis 2017-08-29 v4

Abstract

We describe the algorithms used in the Matlab continuation and bifurcation package pde2path for Hopf bifurcation and continuation of branches of periodic orbits in systems of PDEs in 1, 2, and 3 spatial dimensions, including the computation of Floquet multipliers. We first test the methods on three reaction diffusion examples, namely a complex Ginzburg-Landau equation as a toy problem, a reaction diffusion system on a disk with rotational waves including stable (anti) spirals bifurcating out of the trivial solution, and a Brusselator system with interaction of Turing and Turing-Hopf bifurcations. Then we consider a system from distributed optimal control, which is ill-posed as an initial value problem and thus needs a particularly stable method for computing Floquet multipliers, for which we use a periodic Schur decomposition. The implementation details how to use pde2path on these problems are given in an accompanying tutorial, which, together with all other downloads (function libraries, demos and further documentation) can be found at http://www.staff.uni-oldenburg.de/hannes.uecker/pde2path.

Keywords

Cite

@article{arxiv.1604.01600,
  title  = {Hopf bifurcation and time periodic orbits in reaction-diffusion systems with pde2path - algorithms and applications},
  author = {Hannes Uecker},
  journal= {arXiv preprint arXiv:1604.01600},
  year   = {2017}
}

Comments

New title because the paper has been split, i.e., the implementation details have been outsourced to a tutorial available at http://www.staff.uni-oldenburg.de/hannes.uecker/pde2path

R2 v1 2026-06-22T13:26:27.328Z