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Improvement of Left Ventricular Ejection Time Measurement in the Impedance Cardiography Combined with the Reflection Photoplethysmography

Cardiac stroke volume (SV) is an essential hemodynamic indicator that can be used to assess whether the pump function of the heart is normal. Non-invasive SV measurement is currently performed using the impedance cardiography (ICG). In this technology, left ventricular ejection time (LVET) is an imp...

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Autores principales: Liu, Shing-Hong, Wang, Jia-Jung, Su, Chun-Hung, Cheng, Da-Chuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6164077/
https://www.ncbi.nlm.nih.gov/pubmed/30208616
http://dx.doi.org/10.3390/s18093036
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author Liu, Shing-Hong
Wang, Jia-Jung
Su, Chun-Hung
Cheng, Da-Chuan
author_facet Liu, Shing-Hong
Wang, Jia-Jung
Su, Chun-Hung
Cheng, Da-Chuan
author_sort Liu, Shing-Hong
collection PubMed
description Cardiac stroke volume (SV) is an essential hemodynamic indicator that can be used to assess whether the pump function of the heart is normal. Non-invasive SV measurement is currently performed using the impedance cardiography (ICG). In this technology, left ventricular ejection time (LVET) is an important parameter which can be determined from the ICG signals. However, the ICG signals are inherently susceptible to artificial noise interference, which leads to an inaccurate LVET measurement and then yields an error in the calculation of SV. Therefore, the goal of the study was to measure LVETs using both the transmission and reflection photoplethysmography (PPG), and to assess whether the measured LVET was more accurate by the PPG signal than the ICG signal. The LVET measured by the phonocardiography (PCG) was used as the standard for comparing with those by the ICG and PPG. The study recruited ten subjects whose LVETs were simultaneously measured by the ICG using four electrodes, the reflection PPG using neck sensors (PPG(neck)) and the transmission PPG using finger sensors (PPG(finger)). In each subject, ten LVETs were obtained from ten heartbeats selected properly from one-minute recording. The differences of the measured LVETs between the PCG and one of the ICG, PPG(neck) and PPG(finger) were −68.2 ± 148.6 ms, 4.8 ± 86.5 ms and −7.0 ± 107.5 ms, respectively. As compared with the PCG, both the ICG and PPG(finger) underestimated but the PPG(neck) overestimated the LVETs. Furthermore, the measured LVET by the PPG(neck) was the closest to that by the PCG. Therefore, the PPG(neck) may be employed to improve the LVET measurement in applying the ICG for continuous monitoring of SV in clinical settings.
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spelling pubmed-61640772018-10-10 Improvement of Left Ventricular Ejection Time Measurement in the Impedance Cardiography Combined with the Reflection Photoplethysmography Liu, Shing-Hong Wang, Jia-Jung Su, Chun-Hung Cheng, Da-Chuan Sensors (Basel) Article Cardiac stroke volume (SV) is an essential hemodynamic indicator that can be used to assess whether the pump function of the heart is normal. Non-invasive SV measurement is currently performed using the impedance cardiography (ICG). In this technology, left ventricular ejection time (LVET) is an important parameter which can be determined from the ICG signals. However, the ICG signals are inherently susceptible to artificial noise interference, which leads to an inaccurate LVET measurement and then yields an error in the calculation of SV. Therefore, the goal of the study was to measure LVETs using both the transmission and reflection photoplethysmography (PPG), and to assess whether the measured LVET was more accurate by the PPG signal than the ICG signal. The LVET measured by the phonocardiography (PCG) was used as the standard for comparing with those by the ICG and PPG. The study recruited ten subjects whose LVETs were simultaneously measured by the ICG using four electrodes, the reflection PPG using neck sensors (PPG(neck)) and the transmission PPG using finger sensors (PPG(finger)). In each subject, ten LVETs were obtained from ten heartbeats selected properly from one-minute recording. The differences of the measured LVETs between the PCG and one of the ICG, PPG(neck) and PPG(finger) were −68.2 ± 148.6 ms, 4.8 ± 86.5 ms and −7.0 ± 107.5 ms, respectively. As compared with the PCG, both the ICG and PPG(finger) underestimated but the PPG(neck) overestimated the LVETs. Furthermore, the measured LVET by the PPG(neck) was the closest to that by the PCG. Therefore, the PPG(neck) may be employed to improve the LVET measurement in applying the ICG for continuous monitoring of SV in clinical settings. MDPI 2018-09-11 /pmc/articles/PMC6164077/ /pubmed/30208616 http://dx.doi.org/10.3390/s18093036 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Liu, Shing-Hong
Wang, Jia-Jung
Su, Chun-Hung
Cheng, Da-Chuan
Improvement of Left Ventricular Ejection Time Measurement in the Impedance Cardiography Combined with the Reflection Photoplethysmography
title Improvement of Left Ventricular Ejection Time Measurement in the Impedance Cardiography Combined with the Reflection Photoplethysmography
title_full Improvement of Left Ventricular Ejection Time Measurement in the Impedance Cardiography Combined with the Reflection Photoplethysmography
title_fullStr Improvement of Left Ventricular Ejection Time Measurement in the Impedance Cardiography Combined with the Reflection Photoplethysmography
title_full_unstemmed Improvement of Left Ventricular Ejection Time Measurement in the Impedance Cardiography Combined with the Reflection Photoplethysmography
title_short Improvement of Left Ventricular Ejection Time Measurement in the Impedance Cardiography Combined with the Reflection Photoplethysmography
title_sort improvement of left ventricular ejection time measurement in the impedance cardiography combined with the reflection photoplethysmography
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6164077/
https://www.ncbi.nlm.nih.gov/pubmed/30208616
http://dx.doi.org/10.3390/s18093036
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