Simulating patterns of excitation, repolarization and action potential duration with cardiac bidomain and monodomain models

From MaRDI portal
Publication:2573507

DOI10.1016/j.mbs.2005.04.003zbMath1074.92004OpenAlexW2034287343WikidataQ80356894 ScholiaQ80356894MaRDI QIDQ2573507

Piero Colli Franzone, Luca F. Pavarino, Bruno Taccardi

Publication date: 22 November 2005

Published in: Mathematical Biosciences (Search for Journal in Brave)

Full work available at URL: https://doi.org/10.1016/j.mbs.2005.04.003



Related Items

A fast cardiac electromechanics model coupling the Eikonal and the nonlinear mechanics equations, Reaction-diffusion systems for the macroscopic bidomain model of the cardiac electric field, Towards accurate numerical method for monodomain models using a realistic heart geometry, A Luenberger observer for reaction-diffusion models with front position data, A space-fractional monodomain model for cardiac electrophysiology combining anisotropy and heterogeneity on realistic geometries, A spatially distributed computational model of brain cellular metabolism, Asymptotic Behavior of Fronts and Pulses of the Bidomain Model, Efficient simulation of cardiac electrical propagation using high-order finite elements. II: Adaptive \(p\)-version, Effects of transmural electrical heterogeneities and electrotonic interactions on the dispersion of cardiac repolarization and action potential duration: A simulation study, Towards an efficient computational strategy for electro-activation in cardiac mechanics, A coupled monodomain solver with optimal memory usage for the simulation of cardiac wave propagation, How different two almost identical action potentials can be: a model study on cardiac repolariza\-tion, Unnamed Item, The cardiovascular system: Mathematical modelling, numerical algorithms and clinical applications, Stability of Front Solutions of the Bidomain Allen–Cahn Equation on an Infinite Strip, Efficient simulation of cardiac electrical propagation using high order finite elements, Computational modeling of the electromechanical response of a ventricular fiber affected by eccentric hypertrophy, Epicardial dispersion of repolarization promotes the onset of reentry in Brugada syndrome: a numerical simulation study, Preconditioning the bidomain model with almost linear complexity, Reduced order model in cardiac electrophysiology with approximated Lax pairs, Rush-Larsen time-stepping methods of high order for stiff problems in cardiac electrophysiology, A multilevel hybrid Newton-Krylov-Schwarz method for the bidomain model of electrocardiology, Modelling and simulation for preclinical cardiac safety assessment of drugs with human iPSC-derived cardiomyocytes, (INVITED) Reaction-diffusion waves in cardiovascular diseases, Modeling ventricular repolarization: Effects of transmural and apex-to-base heterogeneities in action potential durations, Computational electrocardiology: mathematical and numerical modeling, Numerical solution of the bidomain equations, Numerical approximation of parametrized problems in cardiac electrophysiology by a local reduced basis method, Numerical sensitivity analysis of a variational data assimilation procedure for cardiac conductivities, Isogeometric analysis of the electrophysiology in the human heart: numerical simulation of the bidomain equations on the atria, Experimental validation of a variational data assimilation procedure for estimating space-dependent cardiac conductivities, A multiscale theoretical model for diffusive mass transfer in cellular biological media, On 3D numerical inverse problems for the bidomain model in electrocardiology, Exponential Adams-Bashforth integrators for stiff ODEs, application to cardiac electrophysiology, Exploring anodal and cathodal make and break cardiac excitation mechanisms in a 3D anisotrop\-ic bidomain model, Optimal monodomain approximations of the bidomain equations used in cardiac electrophysiology, Fourth-order compact schemes with adaptive time step for monodomain reaction-diffusion equations, A finite volume scheme for cardiac propagation in media with isotropic conductivities, Multipatch isogeometric analysis for electrophysiology: simulation in a human heart, Decoupled time-marching schemes in computational cardiac electrophysiology and ECG numerical simulation, A multiresolution space-time adaptive scheme for the bidomain model in electrocardiology, Stochastically forced cardiac bidomain model, A coupled 3D-1D numerical monodomain solver for cardiac electrical activation in the myocardium with detailed Purkinje network, Virtual cell and tissue dynamics of ectopic activation of the ventricles, The inverse problem for mathematical models of heart excitation, Isogeometric Overlapping Additive Schwarz Solvers for the Bidomain System, Apprehending the effects of mechanical deformations in cardiac electrophysiology: A homogenization approach, Isogeometric overlapping Schwarz preconditioners for the bidomain reaction-diffusion system, A model-based block-triangular preconditioner for the bidomain system in electrocardiology, Stability of Front Solutions of the Bidomain Equation, 8 Reduced-order modeling for applications to the cardiovascular system, Modeling and simulation of cardiac electric activity in a human cardiac tissue with multiple ischemic zones, BPX preconditioners for the Bidomain model of electrocardiology, A SURFACE-BASED ELECTROPHYSIOLOGY MODEL RELYING ON ASYMPTOTIC ANALYSIS AND MOTIVATED BY CARDIAC ATRIA MODELING


Uses Software


Cites Work

OSZAR »