Local conduction velocity mapping for electrocardiographic imaging

Corentin Dallet, L. Bear, J. Duchâteau, M. Potse, N. Zemzemi, V. Meillet, Y. Coudière, R. Dubois
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引用次数: 3

Abstract

Slow conduction is a well-known pro-arrhythmic feature for tachycardia and fibrillation. Cardiac conduction velocity (CV) mapping can be extremely helpful for investigating unusual activation patterns. Although methods have been developed to estimate velocity vector field, from ex-vivo preparations (e.g. from optical mapping recordings), the estimation from in-vivo electrograms (EGMs) remains challenging. This paper presents a new method specifically designed for EGMs reconstructed non-invasively from body surface potentials using electrocardiographic imaging (ECGi). The algorithm is based on cardiac activation maps and assumes either a linear or quadratic wavefront shape. The proposed methodology was performed on computed and experimental data for epicardial pacing on healthy tissue. The results were compared with reference velocity vector fields and evaluated by analyzing the errors of direction and speed. The outcomes indicate that a linear wavefront is the most suited for cardiac propagation in healthy tissue.
局部传导速度测绘用于心电图成像
慢传导是众所周知的心动过速和纤颤的促心律失常特征。心传导速度(CV)制图对于研究异常的激活模式非常有帮助。尽管已经开发出了从离体制备(例如从光学测绘记录)估计速度矢量场的方法,但从体内电图(EGMs)估计速度矢量场仍然具有挑战性。本文提出了一种利用心电图(ECGi)从体表电位无创重建心电图的新方法。该算法基于心脏激活图,并假设线性或二次波前形状。所提出的方法是在健康组织的心外膜起搏的计算和实验数据上进行的。结果与参考速度矢量场进行了比较,并对方向和速度误差进行了评价。结果表明,线性波前最适合在健康组织中进行心脏传播。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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