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A novel approach to quantification of real and artifactual components of current density imaging for phantom and live heart

机译:一种量化幻像和活体心脏电流密度成像中真实和人为成分的新颖方法

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Spatial distribution of injected current in a subject could be calculated and visualized through current density imaging (CDI). Calculated CDI paths however have a limited degree of accuracy due to both avoidable methodological errors and inevitable limitations dictated by MR imaging constraints. The source and impact of these limitations are scrutinized in this paper. Quantification of such limitations is an essential step prior to passing any judgment about the results especially in biomedical applications. An innovative technique along with metrics for evaluation of range of errors using baseline and phase cycle MR images is proposed in this work. The presented approach is helpful in pinpointing the local artifacts (areas for which CDI results are suspect), evaluation of global noises and artifacts and assessment of the effect of approximation algorithms on real and artifactual components. We will demonstrate how this error/reliability evaluation is applicable to interpretation of CDI results and in this framework, report the CDI results for an artificial phantom and a live pig heart in Langendorff setup. It is contended here that using this method, the inevitable trade-off between details and approximations of CDI components could be monitored which provides a great opportunity for robust interpretation of results. The proposed approach could be extended, adapted and used for statistical analysis of similar methods which aim at mapping current and impedance based on magnetic flux images obtained through MRI.
机译:可以通过电流密度成像(CDI)计算并可视化对象中注入电流的空间分布。但是,由于可避免的方法错误和由MR成像约束所指示的不可避免的局限性,计算出的CDI路径的精确度有限。本文详细研究了这些限制的来源和影响。在对结果进行任何判断之前,尤其是在生物医学应用中,对这些局限性进行量化是必不可少的步骤。在这项工作中,提出了一种创新技术以及用于使用基线和相位周期MR图像评估误差范围的指标。所提出的方法有助于查明局部伪像(怀疑CDI结果的区域),评估整体噪声和伪像以及评估逼近算法对真实和伪像成分的影响。我们将演示此错误/可靠性评估如何适用于CDI结果的解释,并在此框架中,报告Langendorff装置中的人工体模和活猪心脏的CDI结果。这里主张使用这种方法,可以监视细节和CDI组件近似值之间不可避免的折衷,这为可靠地解释结果提供了很大的机会。所提出的方法可以扩展,改编并用于类似方法的统计分析,这些方法旨在基于通过MRI获得的磁通量图像来绘制电流和阻抗。

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