Improved Estimation of Left Ventricular Volume from Electric Field Modeling.

Q3 Biochemistry, Genetics and Molecular Biology
Journal of Electrical Bioimpedance Pub Date : 2021-12-27 eCollection Date: 2021-01-01 DOI:10.2478/joeb-2021-0015
Leonie Korn, Stephan Dahlmanns, Steffen Leonhardt, Marian Walter
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引用次数: 0

Abstract

Volume measurement is beneficial in left ventricular assist device (LVAD) therapy to quantify patient demand. In principle, an LVAD could provide a platform that allows bioimpedance measurements inside the ventricle without requiring additional implants. Conductance measured by the LVAD can then be used to estimate the ventricular radius, which can be applied to calculate ventricular volume. However, established methods that estimate radius from conductance require elaborate individual calibration or show low accuracy. This study presents two analytical calculation methods to estimate left ventricular radius from conductance using electric field theory. These methods build on the established method of Wei, now considering the dielectric properties of muscle and background tissue, the refraction of the electric field at the blood-muscle boundary, and the changes of the electric field caused by the measurements. The methods are validated in five glass containers of different radius. Additional bioimpedance measurements are performed in in-vitro models that replicate the left ventricle's shape and conductive properties. The proposed analytical calculation methods estimate the radii of the containers and the in-vitro models with higher accuracy and precision than Wei's method. The lead method performs excellently in glass cylinders over a wide range of radii (bias: 1.66%-2.48%, limits of agreement < 16.33%) without calibration to specific geometries.

利用电场模型改进左心室容积估算方法。
容积测量在左心室辅助装置(LVAD)治疗中有助于量化患者的需求。原则上,LVAD可以提供一个平台,允许在心室内进行生物阻抗测量,而无需额外的植入物。然后LVAD测量的电导可用于估计心室半径,从而可用于计算心室容积。然而,根据电导估计半径的现有方法需要详细的单独校准或精度较低。本文提出了用电场理论计算左心室电导半径的两种解析计算方法。这些方法建立在Wei已经建立的方法的基础上,现在考虑了肌肉和背景组织的介电特性、血肌边界处电场的折射以及测量引起的电场变化。在5个不同半径的玻璃容器中对方法进行了验证。在复制左心室形状和导电特性的体外模型中进行额外的生物阻抗测量。所提出的分析计算方法对容器半径和离体模型的估计精度和精密度均高于魏的方法。铅法在玻璃圆柱体的大半径范围内表现优异(偏差:1.66%-2.48%,一致性限制< 16.33%),无需校准特定的几何形状。
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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来源期刊
Journal of Electrical Bioimpedance
Journal of Electrical Bioimpedance Engineering-Biomedical Engineering
CiteScore
3.00
自引率
0.00%
发文量
8
审稿时长
17 weeks
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