Park Moonseong, Eom Kunsun, Jung Myoung H, Park Yun S, Lee June-Young, Nam Sung H
Annu Int Conf IEEE Eng Med Biol Soc. 2020 Jul;2020:3961-3964. doi: 10.1109/EMBC44109.2020.9175336.
Bio-impedance analysis provides non-invasive estimation of body composition. Recently, applications based on bio-impedance measurement in skin tissue such as skin cancer diagnosis and skin composition monitoring have been studied. For scanning the electrical properties along the skin depth, the relationship between the electrode topologies and the depth sensitivity should be clarified. This work reports a systematic analysis on designing line electrode topologies to measure the bio-impedance of the skin layer at specific depth using a finite element method (FEM). Four electrodes consisting of two outer current electrodes and two inner voltage electrodes in the form of Wenner-Schlumberger array were employed on the top of a collagen layer as a skin model. The numerical results demonstrate a change in the effective depth of measurement depending on the electrode topologies, which also have a good agreement with an analytic solution. This study suggests a decision guideline for designing the electrode topologies to achieve target depth sensitivity in bio-impedance measurement of skin tissue.Clinical Relevance-This establishes the effect of electrode topologies on depth sensitivity in bio-impedance measurements in skin layer.
生物电阻抗分析可对身体成分进行非侵入性估计。最近,基于皮肤组织生物阻抗测量的应用,如皮肤癌诊断和皮肤成分监测,已得到研究。为了扫描沿皮肤深度的电学特性,应明确电极拓扑结构与深度敏感性之间的关系。这项工作报告了一项系统分析,该分析使用有限元方法(FEM)设计线电极拓扑结构,以测量特定深度处皮肤层的生物阻抗。在作为皮肤模型的胶原层顶部采用了由两个外部电流电极和两个内部电压电极组成的四个电极,其形式为温纳 - 施伦贝格尔阵列。数值结果表明,有效测量深度会根据电极拓扑结构而变化,这也与解析解具有良好的一致性。本研究为设计电极拓扑结构提供了一个决策指南,以便在皮肤组织的生物阻抗测量中实现目标深度敏感性。临床相关性——这确立了电极拓扑结构对皮肤层生物阻抗测量中深度敏感性的影响。