A multiresolution space-time adaptive scheme for the bidomain model in electrocardiology
Mostafa Bendahmane, Raimund B\"urger, Ricardo Ruiz Baier

TL;DR
This paper introduces an adaptive multiresolution finite volume scheme for efficiently solving the bidomain and monodomain models of cardiac electrical activity, capturing steep wavefronts with high accuracy and reduced computational effort.
Contribution
It develops a multiresolution adaptive method with time adaptivity for the bidomain and monodomain models, improving efficiency and accuracy in simulating myocardial electrical activity.
Findings
The method achieves significant CPU time speed-up.
It effectively captures steep wavefronts in cardiac models.
Memory compression reduces computational resources.
Abstract
This work deals with the numerical solution of the monodomain and bidomain models of electrical activity of myocardial tissue. The bidomain model is a system consisting of a possibly degenerate parabolic PDE coupled with an elliptic PDE for the transmembrane and extracellular potentials, respectively. This system of two scalar PDEs is supplemented by a time-dependent ODE modeling the evolution of the so-called gating variable. In the simpler sub-case of the monodomain model, the elliptic PDE reduces to an algebraic equation. Two simple models for the membrane and ionic currents are considered, the Mitchell-Schaeffer model and the simpler FitzHugh-Nagumo model. Since typical solutions of the bidomain and monodomain models exhibit wavefronts with steep gradients, we propose a finite volume scheme enriched by a fully adaptive multiresolution method, whose basic purpose is to concentrate…
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Taxonomy
Topicsstochastic dynamics and bifurcation · Nonlinear Dynamics and Pattern Formation · Cardiac electrophysiology and arrhythmias
