Related Experiment Video
Updated: May 23, 2026

In Silico Clinical Trials for Cardiovascular Disease
Published on: May 27, 2022
A comparative study of graph-based, eikonal, and monodomain simulations for the estimation of cardiac activation
Mikael Wallman1, Nicolas P Smith, Blanca Rodriguez
1Department of Computer Science, University of Oxford, Oxford, OX1 3QD, UK. mikw@cs.ox.ac.uk
Abstract:
The bidomain and monodomain equations are well established as the standard set of equations for the simulation of cardiac electrophysiological behavior. However, the computational cost of detailed bidomain/monodomain simulations limits their applicability in scenarios where a large number of simulations needs to be performed (e.g., parameter estimation). In this study, we present a graph-based method, which relies on point-to-point path finding to estimate activation times for single points in cardiac tissue with minimal computational costs. To validate our approach, activation times are compared to monodomain simulation results for an anatomically based rabbit ventricular model, incorporating realistic fiber orientation and conduction heterogeneities. Differences in activation times between the graph-based method and monodomain results are less than 10% of the total activation time, and computational performance is orders of magnitude faster with the proposed method when calculating activation times at single points. These results suggest that the graph-based method is well suited for estimating activation times when the need for fast performance justifies a limited loss of accuracy.

