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单等效移动偶极子模型在无限均匀介质中识别心脏电源的适用性:在逼真的解剖几何躯干模型中的计算机模拟研究

Applicability of the single equivalent moving dipole model in an infinite homogeneous medium to identify cardiac electrical sources: a computer simulation study in a realistic anatomic geometry torso model.

作者信息

Fukuoka Yutaka, Oostendorp Thom F, Sherman Derin A, Armoundas Antonis A

机构信息

School of Biomedical Science, Tokyo Medical and Dental University, Tokyo 113-8510, Japan.

出版信息

IEEE Trans Biomed Eng. 2006 Dec;53(12 Pt 1):2436-44. doi: 10.1109/TBME.2006.880882.

Abstract

We have previously proposed an inverse algorithm for fitting potentials due to an arbitrary bio-electrical source to a single equivalent moving dipole (SEMD) model. The algorithm achieves fast identification of the SEMD parameters by employing a SEMD model embedded in an infinite homogeneous volume conductor. However, this may lead to systematic error in the identification of the SEMD parameters. In this paper, we investigate the accuracy of the algorithm in a realistic anatomic geometry torso model (forward problem). Specifically, we investigate the effect of measurement noise, dipole position and electrode configuration in the accuracy of the algorithm. The boundary element method was used to calculate the forward potential distribution at multiple electrode positions on the body surface due to a point dipole in the heart. We have found that the position and not the number of electrodes as well as the site of the origin of the arrhythmia in the heart have a significant effect on the accuracy of the inverse algorithm, while the measurement noise does not. Finally, we have shown that the inverse algorithm preserves the topology of the source distribution in the heart, thus potentially allowing the cardiac electrophysiologist to efficiently and accurately guide the tip of the catheter to the ablation site.

摘要

我们之前提出了一种逆算法,用于将任意生物电源产生的电位拟合到单个等效移动偶极子(SEMD)模型。该算法通过采用嵌入无限均匀体积导体中的SEMD模型,实现了对SEMD参数的快速识别。然而,这可能会导致SEMD参数识别中的系统误差。在本文中,我们研究了该算法在实际解剖几何躯干模型(正向问题)中的准确性。具体而言,我们研究了测量噪声、偶极子位置和电极配置对算法准确性的影响。使用边界元法计算由于心脏中的点偶极子在体表多个电极位置处的正向电位分布。我们发现,电极的位置而非数量以及心脏中心律失常的起源部位对逆算法的准确性有显著影响,而测量噪声则没有。最后,我们表明逆算法保留了心脏中源分布的拓扑结构,从而有可能使心脏电生理学家有效地将导管尖端准确引导至消融部位。

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