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Separation of Cardiac- and Ventilation-related Signals within Electrical Impedance Tomography Data based on Multi-dimensional Ensemble Empirical Mode Decomposition

机译:基于多维集合经验模态分解的电阻抗层析成像数据中与心脏和通气相关的信号分离

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Electrical impedance tomography (EIT) is an promising imaging technology for continuous bedside monitoring of ventilation and perfusion. However, due to the spatial and frequency overlapping of ventilation and cardiac components in the heart-lung interaction system, it’s difficult to separate the components in spontaneous breathing subjects. We introduce an intuitive method based on multi-dimensional ensemble empirical mode decomposition to explore the intrinsic oscillation modes of the ventilation and cardiac components from EIT data. This study combines the spatial information with temporal information, and establishes the combination strategy for the two physiological components based on multi-scale analysis. Our study illustrates preliminary in-vivo results based on the data collected from two healthy male subjects, and qualitatively validates the efficiency of resolving the overlapping of ventilation and perfusion component. The method proposed in our study is believed to open up new possibilities for the assessment of lung ventilation and perfusion. In future work, quantitative validation for separation results of ventilation component and perfusion component will be conducted.
机译:电阻抗断层扫描(EIT)是一种有前途的影像技术,可用于连续在床旁监测通气和灌注。但是,由于心肺交互系统中通气和心脏组件的空间和频率重叠,因此很难在自发呼吸对象中分离出这些组件。我们介绍了一种基于多维整体经验模式分解的直观方法,以从EIT数据中探索通气和心脏成分的固有振荡模式。这项研究将空间信息与时间信息相结合,并在多尺度分析的基础上建立了两种生理成分的结合策略。我们的研究基于从两名健康男性受试者收集的数据说明了初步的体内结果,并定性验证了解决通气和灌注成分重叠的效率。我们的研究中提出的方法被认为为评估肺通气和灌注开辟了新的可能性。在以后的工作中,将对通气成分和灌注成分的分离结果进行定量验证。

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