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缺血的心电图源逆向定位:一种优化框架与有限元解决方案

Inverse Electrocardiographic Source Localization of Ischemia: An Optimization Framework and Finite Element Solution.

作者信息

Wang Dafang, Kirby Robert M, Macleod Rob S, Johnson Chris R

机构信息

School of Computing, University of Utah, Salt Lake City, UT, USA ; Scientific Computing and Imaging Institute, University of Utah, Salt Lake City, USA.

出版信息

J Comput Phys. 2013 Oct 1;250:403-424. doi: 10.1016/j.jcp.2013.05.027.

Abstract

With the goal of non-invasively localizing cardiac ischemic disease using body-surface potential recordings, we attempted to reconstruct the transmembrane potential (TMP) throughout the myocardium with the bidomain heart model. The task is an inverse source problem governed by partial differential equations (PDE). Our main contribution is solving the inverse problem within a PDE-constrained optimization framework that enables various physically-based constraints in both equality and inequality forms. We formulated the optimality conditions rigorously in the continuum before deriving finite element discretization, thereby making the optimization independent of discretization choice. Such a formulation was derived for the -norm Tikhonov regularization and the total variation minimization. The subsequent numerical optimization was fulfilled by a primal-dual interior-point method tailored to our problem's specific structure. Our simulations used realistic, fiber-included heart models consisting of up to 18,000 nodes, much finer than any inverse models previously reported. With synthetic ischemia data we localized ischemic regions with roughly a 10% false-negative rate or a 20% false-positive rate under conditions up to 5% input noise. With ischemia data measured from animal experiments, we reconstructed TMPs with roughly 0.9 correlation with the ground truth. While precisely estimating the TMP in general cases remains an open problem, our study shows the feasibility of reconstructing TMP during the ST interval as a means of ischemia localization.

摘要

以利用体表电位记录对心脏缺血性疾病进行无创定位为目标,我们尝试使用双域心脏模型重建整个心肌的跨膜电位(TMP)。该任务是一个由偏微分方程(PDE)控制的逆源问题。我们的主要贡献是在一个PDE约束优化框架内解决逆问题,该框架允许以等式和不等式形式施加各种基于物理的约束。在推导有限元离散化之前,我们在连续统中严格制定了最优性条件,从而使优化与离散化选择无关。这种公式是针对 -范数Tikhonov正则化和总变差最小化推导出来的。随后的数值优化通过针对我们问题的特定结构定制的原始对偶内点法来完成。我们的模拟使用了包含纤维的真实心脏模型,该模型由多达18000个节点组成,比之前报道的任何逆模型都要精细得多。利用合成缺血数据,在高达5%的输入噪声条件下,我们定位缺血区域的假阴性率约为10%,假阳性率约为20%。利用从动物实验测量的缺血数据,我们重建的TMP与真实情况的相关性约为0.9。虽然在一般情况下精确估计TMP仍然是一个未解决的问题,但我们的研究表明,在ST段期间重建TMP作为缺血定位手段的可行性。

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