Relative acceleration of orthonormal basis vectors for the geometric conduction blocks of the cardiac electric signal propagation on anisotropic curved surfaces

Sehun Chun
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Abstract

Geometric conduction blocks stop cardiac electric propagation due to the shape or conductivity properties of the domain. The blocks are considered to cause many abnormal cardiac electric propagations, leading to cardiac electrophysiological pathologies, such as cardiac fibrillation and arrhythmia. Locating such multidimensional conduction blocks is challenging, particularly in a complex domain with a complex shape and strong anisotropy, such as the heart. To address this problem, we propose a novel mathematical model of the geometric conduction block using the relative acceleration adopted from space-time physics. An efficient numerical scheme for the mathematical model is also proposed to predict the unidirectional conduction block effectively, even in a complex domain. The relative acceleration in the cardiac electric propagation corresponds to the sink-source relationship between the excited (after repolarization) and excitable (before depolarization) cardiac cells, representing the geometric growth rate of the volume of metric balls. The trajectory is constructed from the wavefront of diffusion-reaction equations by aligning orthonormal basis vectors along the gradient of the action potential. Relative acceleration is computed along the propagational direction from the connection 1-form of the basis vectors. The proposed mathematical model and numerical scheme are applied to demonstrate geometric conduction blocks in two-dimensional (2D) simple curved domains with strong anisotropy.

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各向异性曲面上心电信号几何传导块正交基向量的相对加速度
几何传导阻滞阻止心脏电传播由于形状或电导率的领域。这些阻滞被认为会引起许多异常的心脏电传播,导致心脏电生理病理,如心脏颤动和心律失常。定位这种多维传导块是具有挑战性的,特别是在具有复杂形状和强各向异性的复杂区域,如心脏。为了解决这一问题,我们提出了一种新的几何传导块的数学模型,该模型采用了时空物理学中的相对加速度。提出了一种有效的数学模型的数值格式,即使在复杂的区域也能有效地预测单向传导块。心脏电传播的相对加速度对应于兴奋(复极化后)和可兴奋(去极化前)心肌细胞之间的汇源关系,代表米制球体积的几何增长率。该轨迹由扩散反应方程的波前沿动作电位梯度排列标准正交基向量构成。从基向量的连接1形式出发,沿传播方向计算相对加速度。应用所提出的数学模型和数值格式,对具有强各向异性的二维简单曲面域的几何导通块进行了验证。
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来源期刊
Journal of Computational Physics: X
Journal of Computational Physics: X Physics and Astronomy-Physics and Astronomy (miscellaneous)
CiteScore
6.10
自引率
0.00%
发文量
7
期刊最新文献
Editorial Board Monte Carlo radiative transfer peel off mechanism for spatially extended detectors Relative acceleration of orthonormal basis vectors for the geometric conduction blocks of the cardiac electric signal propagation on anisotropic curved surfaces Ensemble transport smoothing. Part I: Unified framework Ensemble transport smoothing. Part II: Nonlinear updates
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