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[Design and Implementation of Non-Invasive Hemodynamic Monitoring System Based on Impedance Cardiogram Method]
Fuhao Kang1,2, Qi Yin1, Yanan Liu1,2
1School of Biomedical Engineering, Health Science Center, Shenzhen University, Shenzhen, 518052.
Insights
This study presents a novel non-invasive hemodynamic monitoring system using impedance cardiography. The system accurately measures key hemodynamic parameters like cardiac output, offering a safe and reliable alternative to invasive methods.
Area of Science:
- Biomedical Engineering
- Cardiovascular Physiology
- Medical Instrumentation
Context:
- Hemodynamic monitoring is crucial for assessing cardiac function and blood perfusion.
- Invasive methods like thermodilution have limitations, driving demand for non-invasive alternatives.
- Non-invasive monitoring offers safety, continuous data, and ease of use.
Purpose:
- To design and evaluate a non-invasive hemodynamic monitoring system based on impedance cardiography.
- To develop hardware, algorithms, and software for signal acquisition and processing.
- To calculate key hemodynamic parameters using the Nyboer thoracic cylinder model.
Summary:
- The system utilizes impedance cardiography and ECG signals to calculate heart rate, stroke volume, and cardiac output.
- Hardware includes constant current source stimulation and signal acquisition circuits.
- Signal processing involves filtering, calibration, and feature point recognition.
Impact:
- The designed system demonstrates high accuracy and reliability in measuring hemodynamic parameters.
- Validation against a commercial device showed strong correlations for heart rate, stroke volume, and cardiac output.
- This non-invasive system offers a promising advancement for clinical hemodynamic assessment.
Abstract:
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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