Vector Field Heterogeneity for the Assessment of Locally Disorganised Cardiac Electrical Propagation Wavefronts From High-Density Multielectrodes

IEEE Open J Eng Med Biol. 2023 Dec 20:5:32-44. doi: 10.1109/OJEMB.2023.3344349. eCollection 2024.

Abstract

High-density multielectrode catheters are becoming increasingly popular in cardiac electrophysiology for advanced characterisation of the cardiac tissue, due to their potential to identify impaired sites. These are often characterised by abnormal electrical conduction, which may cause locally disorganised propagation wavefronts. To quantify it, a novel heterogeneity parameter based on vector field analysis is proposed, utilising finite differences to measure direction changes between adjacent cliques. The proposed Vector Field Heterogeneity metric has been evaluated on a set of simulations with controlled levels of organisation in vector maps, and a variety of grid sizes. Furthermore, it has been tested on animal experimental models of isolated Langendorff-perfused rabbit hearts. The proposed parameter exhibited superior capturing ability of heterogeneous propagation wavefronts compared to the classical Spatial Inhomogeneity Index, and simulations proved that the metric effectively captures gradual increments in disorganisation in propagation patterns. Notably, it yielded robust and consistent outcomes for [Formula: see text] grid sizes, underscoring its suitability for the latest generation of orientation-independent cardiac catheters.

Keywords: Animal experimental models; cardiac signal processing; electrophysiology; high-density electrode catheters; vector field heterogeneity.

Grants and funding

This work was supported in part by the National Research Program, Ministerio de Ciencia e Innovación, Spanish Government under Grants PID2019-109547RB-I00 and PID2022-142514OB-I00, and in part by Instituto de Salud Carlos II under Grant CIBERCV CB16/11/00486.