首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >Application of the method of fundamental solutions to potential-based inverse electrocardiography.
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Application of the method of fundamental solutions to potential-based inverse electrocardiography.

机译:基本解法在基于电位的逆心电图中的应用。

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Potential-based inverse electrocardiography is a method for the noninvasive computation of epicardial potentials from measured body surface electrocardiographic data. From the computed epicardial potentials, epicardial electrograms and isochrones (activation sequences), as well as repolarization patterns can be constructed. We term this noninvasive procedure Electrocardiographic Imaging (ECGI). The method of choice for computing epicardial potentials has been the Boundary Element Method (BEM) which requires meshing the heart and torso surfaces and optimizing the mesh, a very time-consuming operation that requires manual editing. Moreover, it can introduce mesh-related artifacts in the reconstructed epicardial images. Here we introduce the application of a meshless method, the Method of Fundamental Solutions (MFS) to ECGI. This new approach that does not require meshing is evaluated on data from animal experiments and human studies, and compared to BEM. Results demonstrate similar accuracy, with the following advantages: 1. Elimination of meshing and manual mesh optimization processes, thereby enhancing automation and speeding the ECGI procedure. 2. Elimination of mesh-induced artifacts. 3. Elimination of complex singular integrals that must be carefully computed in BEM. 4. Simpler implementation. These properties of MFS enhance the practical application of ECGI as a clinical diagnostic tool.
机译:基于电位的反向心电图检查是一种从测量的体表心电图数据中无创计算心外膜电位的方法。根据计算出的心外膜电位,可以构建心外膜电图和等时线(激活序列)以及复极化模式。我们将这种非侵入性程序称为心电图成像(ECGI)。计算心外膜电位的首选方法是边界元方法(BEM),该方法需要对心脏和躯干表面进行网格划分并优化网格,这是一项非常耗时的操作,需要手动编辑。此外,它可以在重建的心外膜图像中引入与网格相关的伪影。在这里,我们介绍了无网格方法,即ECGI的基本解法(MFS)的应用。这种不需要网格划分的新方法将根据动物实验和人体研究的数据进行评估,并与BEM进行比较。结果显示出相似的准确性,具有以下优点:1.消除了网格划分和手动网格优化过程,从而增强了自动化并加快了ECGI程序。 2.消除网格引起的伪像。 3.消除必须在BEM中仔细计算的复杂奇异积分。 4.更简单的实现。 MFS的这些特性增强了ECGI作为临床诊断工具的实际应用。

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