Literature DB >> 17395998

Automatic detection of left ventricular ejection time from a finger photoplethysmographic pulse oximetry waveform: comparison with Doppler aortic measurement.

Gregory S H Chan1, Paul M Middleton, Branko G Celler, Lu Wang, Nigel H Lovell.   

Abstract

Left ventricular ejection time (LVET) is a useful measure of ventricular performance and preload. The present study explores a novel method of continuous LVET monitoring using a noninvasive finger photoplethysmographic pulse oximetry waveform (PPG-POW). A method for the automatic beat-to-beat detection of LVET from the finger PPG-POW is presented based on a combination of derivative analysis, waveform averaging and rule-based logic. The performance of the detection method was evaluated on 13 healthy subjects during graded head-up tilt. Overall, the correlation between the PPG-POW derived LVET and the aortic flow derived LVET was high and significant (r = 0.897, p < 0.05). The bias was -14 +/- 14 ms (mean +/- SD), and the percentage error was 9.7%. Although these results would not be sufficient to satisfy the requirement for clinical evaluation of LVET when absolute accuracy was demanded, the strong correlation between the PPG-POW LVET and the aortic LVET on an intra-subject basis (r = 0.945 +/- 0.043, mean +/- SD) would support the application of PPG-POW to detect the directional change in LVET of an individual. This could be very useful for the early identification of progressive hypovolaemia or blood loss. The present study has demonstrated a promising approach to extract potentially useful information from a noninvasive, easy-to-obtain signal that could be readily acquired either from existing patient monitoring equipment or from inexpensive instrumentation. More extensive investigation is necessary to evaluate the applicability of the present approach in clinical care monitoring.

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Year:  2007        PMID: 17395998     DOI: 10.1088/0967-3334/28/4/009

Source DB:  PubMed          Journal:  Physiol Meas        ISSN: 0967-3334            Impact factor:   2.833


  10 in total

1.  Relationship between pulse transit time and blood pressure is impaired in patients with chronic heart failure.

Authors:  Daniel R Wagner; Norbert Roesch; Patrick Harpes; Heinrich Körtke; Pierre Plumer; Amir Saberin; Viviane Chakoutio; Denis Oundjede; Charles Delagardelle; Jean Beissel; Georges Gilson; Ingrid Kindermann; Michael Böhm
Journal:  Clin Res Cardiol       Date:  2010-05-16       Impact factor: 5.460

2.  Ejection time: influence of hemodynamics and site of measurement in the arterial tree.

Authors:  Yurie Obata; Maki Mizogami; Sarabdeep Singh; Daniel Nyhan; Dan E Berkowitz; Jochen Steppan; Viachaslau Barodka
Journal:  Hypertens Res       Date:  2017-03-30       Impact factor: 3.872

3.  Wearable Photoplethysmography for Cardiovascular Monitoring.

Authors:  Peter H Charlton; Panicos A Kyriaco; Jonathan Mant; Vaidotas Marozas; Phil Chowienczyk; Jordi Alastruey
Journal:  Proc IEEE Inst Electr Electron Eng       Date:  2022-03-11       Impact factor: 10.961

4.  Using Smart Wearables to Monitor Cardiac Ejection .

Authors:  Aristide Mathieu; Peter H Charlton; Jordi Alastruey
Journal:  Proceedings (MDPI)       Date:  2018-11-14

5.  Left ventricular ejection time on echocardiography predicts long-term mortality in light chain amyloidosis.

Authors:  Raymond Q Migrino; Ravi K Mareedu; Daniel Eastwood; Mark Bowers; Leanne Harmann; Parameswaran Hari
Journal:  J Am Soc Echocardiogr       Date:  2009-10-31       Impact factor: 5.251

6.  Clinical and imaging predictors of 1-year and long-term mortality in light chain (AL) amyloidosis: a 5-year follow-up study.

Authors:  Raymond Q Migrino; Leanne Harmann; Richard Christenson; Parameswaran Hari
Journal:  Heart Vessels       Date:  2013-10-19       Impact factor: 2.037

7.  Effects of oxytocin and anaesthesia on vascular tone in pregnant women: a randomised double-blind placebo-controlled study using non-invasive pulse wave analysis.

Authors:  Sofus Rabow; Ull Hjorth; Sofia Schönbeck; Per Olofsson
Journal:  BMC Pregnancy Childbirth       Date:  2018-11-22       Impact factor: 3.007

8.  A comparison between left ventricular ejection time measurement methods during physiological changes induced by simulated microgravity.

Authors:  Stefan Orter; Stefan Möstl; Martin Bachler; Fabian Hoffmann; Christopher C Mayer; Eugenijus Kaniusas; Michaela Reisinger; Siegfried Wassertheurer; Jens Tank; Jens Jordan; Bernhard Hametner
Journal:  Exp Physiol       Date:  2022-01-24       Impact factor: 2.858

9.  Coherence between Decomposed Components of Wrist and Finger PPG Signals by Imputing Missing Features and Resolving Ambiguous Features.

Authors:  Pei-Yun Tsai; Chiu-Hua Huang; Jia-Wei Guo; Yu-Chuan Li; An-Yeu Andy Wu; Hung-Ju Lin; Tzung-Dau Wang
Journal:  Sensors (Basel)       Date:  2021-06-24       Impact factor: 3.576

10.  Automatic physiological waveform processing for FMRI noise correction and analysis.

Authors:  Daniel J Kelley; Terrence R Oakes; Larry L Greischar; Moo K Chung; John M Ollinger; Andrew L Alexander; Steven E Shelton; Ned H Kalin; Richard J Davidson
Journal:  PLoS One       Date:  2008-03-12       Impact factor: 3.240

  10 in total

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