Inverse localization of ischemia in a 3D realistic geometry: A level set approach

C. E. Chávez, F. Atienza, N. Zemzemi, Y. Coudière, D. Álvarez
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引用次数: 1

Abstract

The reconstruction of cardiac ischemic regions from body surface potential measurements (BSPMs) is usually performed at a single time instant which corresponds to the plateau or resting phase of the cardiac action potential. Using a different approach, we previously proposed a level set formulation that incorporates the knowledge of the cardiac excitation process in the inverse procedure, thus exploiting the spatio-temporal correlations contained in the BSPMs. In this study, we extend our inverse level-set formulation for the reconstruction of ischemic regions to 3D realistic geometries, and analyze its performance in different noisy scenarios. Our method is benchmarked against zero-order Tikhonov regularization. The inverse reconstruction of the ischemic region is evaluated using the correlation coefficient (CC), the sensitive error ratio (SN), and the specificity error ratio (SP). Our algorithm outperforms zero-order Tikhonov regularization, specially in highly noisy scenarios.
三维逼真几何中缺血的逆定位:水平集方法
体表电位测量(BSPMs)对心脏缺血区域的重建通常在与心脏动作电位的平台期或静息期相对应的单个时间瞬间进行。使用不同的方法,我们之前提出了一个水平集公式,该公式将心脏兴奋过程的知识纳入逆过程,从而利用了BSPMs中包含的时空相关性。在这项研究中,我们将我们的逆水平集公式扩展到三维真实几何形状的缺血区域重建,并分析了它在不同噪声场景下的性能。我们的方法对零阶吉洪诺夫正则化进行了基准测试。利用相关系数(CC)、敏感错误率(SN)和特异性错误率(SP)对缺血区域的逆重构进行评价。我们的算法优于零阶吉洪诺夫正则化,特别是在高噪声情况下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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