Design and Implementation of a Portable Impedance Cardiography System for Noninvasive Stroke Volume Monitoring.

IF 1.3 Q4 ENGINEERING, BIOMEDICAL
Journal of Medical Signals & Sensors Pub Date : 2016-01-01
Hassan Yazdanian, Amin Mahnam, Mehdi Edrisi, Morteza Abdar Esfahani
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引用次数: 0

Abstract

Measurement of the stroke volume (SV) and its changes over time can be very helpful for diagnosis of dysfunctions in the blood circulatory system and monitoring their treatments. Impedance cardiography (ICG) is a simple method of measuring the SV based on changes in the instantaneous mean impedance of the thorax. This method has received much attention in the last two decades because it is noninvasive, easy to be used, and applicable for continuous monitoring of SV as well as other hemodynamic parameters. The aim of this study was to develop a low-cost portable ICG system with high accuracy for monitoring SV. The proposed wireless system uses a tetrapolar configuration to measure the impedance of the thorax at 50 kHz. The system consists of carefully designed precise voltage-controlled current source, biopotential recorder, and demodulator. The measured impedance was analyzed on a computer to determine SV. After evaluating the system's electronic performance, its accuracy was assessed by comparing its measurements with the values obtained from Doppler echocardiography (DE) on 5 participants. The implemented ICG system can noninvasively provide a continuous measure of SV. The signal to noise ratio of the system was measured above 50 dB. The experiments revealed that a strong correlation (r = 0.89) exists between the measurements by the developed system and DE (P < 0.05). ICG as the sixth vital sign can be measured simply and reliably by the developed system, but more detailed validation studies should be conducted to evaluate the system performance. There is a good promise to upgrade the system to a commercial version domestically for clinical use in the future.

一种用于无创脑卒中量监测的便携式阻抗心图系统的设计与实现。
测量脑卒中量及其随时间的变化对诊断血液循环系统功能障碍和监测其治疗非常有帮助。心阻抗图(ICG)是一种基于胸部瞬时平均阻抗变化测量SV的简单方法。该方法在过去二十年中受到了广泛关注,因为它是无创的,易于使用,并且适用于SV和其他血液动力学参数的连续监测。本研究的目的是开发一种低成本、高精度的便携式ICG系统来监测SV。所提出的无线系统使用四极配置来测量50kHz下的胸部阻抗。该系统由精心设计的精确电压控制电流源、生物电位记录仪和解调器组成。在计算机上分析测量的阻抗以确定SV。在评估系统的电子性能后,通过将其测量值与5名参与者的多普勒超声心动图(DE)获得的值进行比较来评估其准确性。所实现的ICG系统可以无创地提供SV的连续测量。该系统的信噪比测量值高于50dB。实验表明,所开发的系统的测量值与DE之间存在很强的相关性(r=0.89)(P<0.05)。ICG作为第六生命体征,可以通过所开发的方法简单可靠地测量,但需要进行更详细的验证研究来评估系统的性能。未来,该系统有望在国内升级为商业版本,用于临床使用。
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 Medical Signals & Sensors
Journal of Medical Signals & Sensors ENGINEERING, BIOMEDICAL-
CiteScore
2.30
自引率
0.00%
发文量
53
审稿时长
33 weeks
期刊介绍: JMSS is an interdisciplinary journal that incorporates all aspects of the biomedical engineering including bioelectrics, bioinformatics, medical physics, health technology assessment, etc. Subject areas covered by the journal include: - Bioelectric: Bioinstruments Biosensors Modeling Biomedical signal processing Medical image analysis and processing Medical imaging devices Control of biological systems Neuromuscular systems Cognitive sciences Telemedicine Robotic Medical ultrasonography Bioelectromagnetics Electrophysiology Cell tracking - Bioinformatics and medical informatics: Analysis of biological data Data mining Stochastic modeling Computational genomics Artificial intelligence & fuzzy Applications Medical softwares Bioalgorithms Electronic health - Biophysics and medical physics: Computed tomography Radiation therapy Laser therapy - Education in biomedical engineering - Health technology assessment - Standard in biomedical engineering.
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