Cardiac electrophysiology simulations are numerically challenging because of the propagation of a steep electrochemical wave front and thus require discretizations with small mesh sizes to obtain accurate results. In this work, we present an approach based on the hybridizable discontinuous Galerkin method (HDG), which allows an efficient implementation of high-order discretizations into a computational framework. In particular, using the advantage of the discontinuous function space, we present an efficient p-adaptive strategy for accurately tracking the wave front. The HDG allows to reduce the overall degrees of freedom in the final linear system to those only on the element interfaces. Additionally, we propose a rule for a suitable integr...
<p>Many numerical approaches exist to solving models of electrical activity in the heart. These mod...
A p-adaptive hybridizable discontinuous Galerkin method for the solution of wave problems is present...
We propose a novel, efficient finite element solution technique to simulate the electrochemical resp...
Cardiac electrophysiology simulations are numerically challenging because of the propagation of a st...
Cardiac electrophysiology simulations are numerically challenging due to the propagation of a steep ...
This thesis investigates the high-order hierarchical finite element method, also known as the finite...
This PhD thesis proposes a p-adaptive technique for the Hybridizable Discontinuous Galerkin method (...
AbstractWe present a numerical discretisation of an embedded two-dimensional manifold using high-ord...
A p-adaptive Hybridizable Discontinuous Galerkin (HDG) method is presented for the solution of wave ...
Abstract. A p-adaptive Hybridizable Discontinuous Galerkin (HDG) method is presented for the solutio...
We present an application of high order hierarchical finite elements for the efficient approximation...
AbstractThe simulation of cardiac electrophysiology requires small time steps and a fine mesh in ord...
In this thesis a coupled model of cardiac electromechanical activity is presented, using the finite ...
The simulation of cardiac electrophysiology requires small time steps and a fine mesh in order to re...
International audienceNumerical simulation of the nonlinear reaction-diffusion equations in computat...
<p>Many numerical approaches exist to solving models of electrical activity in the heart. These mod...
A p-adaptive hybridizable discontinuous Galerkin method for the solution of wave problems is present...
We propose a novel, efficient finite element solution technique to simulate the electrochemical resp...
Cardiac electrophysiology simulations are numerically challenging because of the propagation of a st...
Cardiac electrophysiology simulations are numerically challenging due to the propagation of a steep ...
This thesis investigates the high-order hierarchical finite element method, also known as the finite...
This PhD thesis proposes a p-adaptive technique for the Hybridizable Discontinuous Galerkin method (...
AbstractWe present a numerical discretisation of an embedded two-dimensional manifold using high-ord...
A p-adaptive Hybridizable Discontinuous Galerkin (HDG) method is presented for the solution of wave ...
Abstract. A p-adaptive Hybridizable Discontinuous Galerkin (HDG) method is presented for the solutio...
We present an application of high order hierarchical finite elements for the efficient approximation...
AbstractThe simulation of cardiac electrophysiology requires small time steps and a fine mesh in ord...
In this thesis a coupled model of cardiac electromechanical activity is presented, using the finite ...
The simulation of cardiac electrophysiology requires small time steps and a fine mesh in order to re...
International audienceNumerical simulation of the nonlinear reaction-diffusion equations in computat...
<p>Many numerical approaches exist to solving models of electrical activity in the heart. These mod...
A p-adaptive hybridizable discontinuous Galerkin method for the solution of wave problems is present...
We propose a novel, efficient finite element solution technique to simulate the electrochemical resp...