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Localization of Sparse Transmural Excitation Stimuli from Surface Mapping

机译:从表面映射稀疏的透壁兴奋刺激的本地化。

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As in-silico 3D electrophysiological (EP) models start to play an essential role in revealing transmural EP characteristics and diseased substrates in individual hearts, there arises a critical challenge to properly initialize these models, i.e., determine the location of excitation stimuli without a trial-and-error process. In this paper, we present a novel method to localize transmural stimuli based on their spatial spar-sity using surface mapping data. In order to overcome the mathematical ill-posedness caused by the limited measurement data, a neighborhood-smoothness constraint is used to first obtain a low-resolution estimation of sparse solution. This is then used to initialize an iterative, re-weighted minimum-norm regularization to enforce a sparse solution and thereby overcome the physical ill-posedness of the electromagnetic inverse problem. Phantom experiments are performed on a human heart-torso model to evaluate this method in localizing excitation stimuli at different regions and depths within the ventricles, as well as to test its feasibility in differentiating multiple remotely or close distributed stimuli. Real-data experiments are performed on a healthy and an infarcted porcine heart, where activation isochronous simulated with the reconstructed stimuli are significantly closer to the catheterized mapping data than other stimuli configurations. This method has the potential to benefit the current research in subject-specific EP modeling as well as to facilitate clinical decisions involving device pacing and ectopic foci.
机译:随着硅3D电生理(EP)模型开始在揭示透壁EP特性和单个心脏中患病的底物方面起着至关重要的作用,因此如何正确初始化这些模型(即在不进行试验的情况下确定激发刺激的位置)就面临着严峻的挑战。和错误的过程。在本文中,我们提出了一种使用表面贴图数据基于其空间稀疏性定位跨壁刺激的新方法。为了克服由有限的测量数据引起的数学不适定性,使用邻域平滑约束首先获得稀疏解的低分辨率估计。然后将其用于初始化迭代,重新加权的最小范数正则化,以强制执行稀疏解,从而克服电磁反问题的物理不适定性。在人体心脏-躯干模型上进行了幻影实验,以评估该方法在脑室内不同区域和深度处定位刺激的能力,并测试其在区分多个远程或紧密分布的刺激力​​方面的可行性。在健康的和梗死的猪心脏上进行了真实数据实验,其中与重建的刺激相比,用重建的刺激模拟的同步等时显着更接近导管测绘数据。这种方法有可能有益于当前针对特定受试者的EP建模的研究,以及促进涉及设备起搏和异位灶的临床决策。

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