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Evaluation of 2-norm versus sparsity regularization in spline-based joint reconstruction of epicardial and endocardial potentials from body-surface measurements

机译:基于样条状和心肌电位的样条状和心肌势的三常态与稀疏正规化的评价

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Cardiac electrical imaging, reconstruction of cardiac electrical activity from body surface potentials, has gained increasing clinical interest as a noninvasive imaging modality for underlying electrophysiological phenomena. We have previously presented an approach using 1) a transmural regularization to improve the joint reconstruction of electrical potentials on both the inner and outer surface of the ventricles; and 2) a nonlinear low-order dynamic spline-based parameterization to provide temporal regularization. This approach was tested for localizing endocardial pacing locations obtained from healthy hearts during catheter-based stimulation, using imprecise thorax geometry derived from limited computed tomographic scans. Results were promising, but the reconstructed solutions were overly smooth in space and time. Recently, L1-norm based spatial sparsity methods such as total-variation regularization have been reported to return more realistically sharp solutions in cardiac electrical imaging. In this paper, we compare and evaluate the performance of L2-norm based Tikhonov and L1-norm based total-variation regularization in conjunction with the spline parameterization and the transmural regularization. Numerical experiments were conducted on three subjects, each with multiple (??? 20) endocardial pacing sites and evaluated against true pacing locations reported by the CARTO catheter mapping system. Variability was observed in the performance of the two methods across both pacing sites and subjects. However, the dependence of the results on subjects and ventricular pacing locations suggests that there is some correlation between the results and the specific geometry in each case. In our future work, we will investigate the approach of automatically inferring an optimal regularization norm from the data rather than fixing it a priori.
机译:心脏电成像,从体表电位重建心脏电活动,从而增加了临床兴趣,作为潜在的电生理现象的非侵入性成像模态。我们以前提出了一种方法,使用1)透气正规化,以改善心室内外表面和外表面的电势的关节重建; 2)基于非线性低阶动态样条的参数化以提供时间正则化。测试该方法以在基于导管的刺激期间定位从健康心脏获得的内膜姿势位置,使用来自有限的计算机断层扫描的不精确胸部几何。结果很有希望,但重建的解决方案在空间和时间内过度光滑。最近,已经报道了L1-Norm基的空间稀疏方法,例如总变化正则化,以返回心脏电成像中更现实的尖锐解决方案。在本文中,我们将基于L2-Norm基于Tikhonov和L1-Norm的总变化正则化的性能进行比较,与样条参数化和透析规则化相结合。在三个受试者中进行数值实验,每个受试者进行多个(??? 20)外伤位点,并评估Carto导管映射系统报告的真正起搏位置。在步行位点和受试者的两种方法表现中观察到变异性。然而,对受试者和心室起搏位置的结果的依赖性表明,结果和每种情况下的特定几何形状之间存在一些相关性。在未来的工作中,我们将研究自动推断从数据中最佳正则化规范的方法,而不是将其固定为先验。

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