基于阻抗心电图法的无创血流动力学监测系统的设计与实现

Q4 Medicine
Fuhao Kang, Qi Yin, Yanan Liu, Lin Huang, Yan Hang, Jilun Ye, Xu Zhang
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引用次数: 0

摘要

血液动力学监测可反映心脏功能和血液灌注情况,是临床实践中不可或缺的监测方法。以热稀释法为代表的有创血流动力学监测方法由于需要血管插管,临床应用范围有限。无创血流动力学监测因其安全、无创、连续监测、操作简单、成本低廉等优点,近年来受到国内外医疗企业和临床医生的广泛关注。本文设计了一种基于阻抗心动图的无创血流动力学监测系统,包括硬件、算法、软件设计和性能参数评估。其中,硬件部分主要包括差分高频恒流源刺激电路、阻抗心电信号采集和心电信号采集电路。信号处理包括滤波、阻抗心电信号校准、心电信号和阻抗心电信号特征点识别。根据采集到的阻抗心电图和心电信号,基于 Nyboer 胸廓气缸模型计算出心率(HR)、每搏量(SV)、心输出量(CO)、每搏指数(SI)、心脏指数(CI)和心脏收缩力指数(ICON)等血液动力学参数。经测试,系统硬件的关键技术指标优于相关医疗器械标准。该系统用于采集 40 名志愿者的阻抗心电图和心电信号数据。计算得出的 HR、SV 和 CO 这三个重要的血液动力学指标与德国 OSYPKA Medical 公司的 ICONCore 无创心输出量监测仪进行了比较。两者的皮尔逊相关系数为 0.992 ( PPP
本文章由计算机程序翻译,如有差异,请以英文原文为准。
[Design and Implementation of Non-Invasive Hemodynamic Monitoring System Based on Impedance Cardiogram Method].

Hemodynamic monitoring can reflect cardiac function and blood perfusion and is an indispensable monitoring method in clinical practice. Invasive hemodynamic monitoring methods represented by the thermodilution method are limited in their clinical application scope because they require vascular cannulation. Non-invasive hemodynamic monitoring has attracted extensive attention from medical companies and clinicians at home and abroad in recent years due to its advantages such as safety, non-invasiveness, continuous monitoring, simple operation, and low cost. This paper designs a non-invasive hemodynamic monitoring system based on the impedance cardiography, including hardware, algorithm, software design, and performance parameter evaluation. Among them, the hardware part mainly includes a differential high-frequency constant current source stimulation circuit, impedance cardiogram signal acquisition, and ECG signal acquisition circuit. Signal processing includes wave filtering, impedance cardiogram signal calibration, and ECG signal and impedance cardiogram signal feature point recognition. According to the collected impedance cardiogram and ECG signals, hemodynamic parameters such as heart rate (HR), stroke volume (SV), cardiac output (CO), stroke index (SI), cardiac index (CI), and cardiac contractility index (ICON) are calculated based on the Nyboer thoracic cylinder model. After testing, the key technical indicators of the system hardware are better than that of the relevant medical device standards. The system was used to collect impedance cardiogram and ECG signal data from 40 volunteers. The calculated HR, SV, and CO, three important hemodynamic indicators, were compared with the ICONCore non-invasive cardiac output monitor of OSYPKA Medical in Germany. Their Pearson correlation coefficients were 0.992 ( P<0.001), 0.948 ( P<0.001), and 0.933 ( P<0.001), respectively, verifying that the designed system has high accuracy and reliability.

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来源期刊
中国医疗器械杂志
中国医疗器械杂志 Medicine-Medicine (all)
CiteScore
0.40
自引率
0.00%
发文量
8086
期刊介绍: Chinese Journal of Medical Instrumentation mainly reports on the development, progress, research and development, production, clinical application, management, and maintenance of medical devices and biomedical engineering. Its aim is to promote the exchange of information on medical devices and biomedical engineering in China and turn the journal into a high-quality academic journal that leads academic directions and advocates academic debates.
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