DocumentCode :
1260779
Title :
Multiscale Analysis of Microvascular Blood Flow: A Multiscale Entropy Study of Laser Doppler Flowmetry Time Series
Author :
Humeau, A. ; Mahe, Guillaume ; Chapeau-Blondeau, F. ; Rousseau, D. ; Abraham, Pierre
Author_Institution :
Lab. d´Ing. des Syst. Automatises, Univ. d´Angers, Angers, France
Volume :
58
Issue :
10
fYear :
2011
Firstpage :
2970
Lastpage :
2973
Abstract :
Processes regulating the cardiovascular system (CVS) are numerous. Each possesses several temporal scales. Their interactions lead to interdependences across multiple scales. For the CVS analysis, different multiscale studies have been proposed, mostly performed on heart rate variability signals (HRV) reflecting the central CVS; only few were dedicated to data from the peripheral CVS, such as laser Doppler flowmetry (LDF) signals. Very recently, a study implemented the first computation of multiscale entropy for LDF signals. A nonmonotonic evolution of multiscale entropy with two distinctive scales was reported, leading to a markedly different behavior from the one of HRV. Our goal herein is to confirm these results and to go forward in the investigations on origins of this behavior. For this purpose, 12 LDF signals recorded simultaneously on the two forearms of six healthy subjects are processed. This is performed before and after application of physiological scales-based filters aiming at isolating previously found frequency bands linked to physiological activities. The results obtained with signals recorded simultaneously on two different sites of each subject show a probable central origin for the nonmonotonic behavior. The filtering results lead to the suggestion that origins of the distinctive scales could be dominated by the cardiac activity.
Keywords :
Doppler measurement; biomedical measurement; cardiovascular system; entropy; haemodynamics; time series; CVS analysis; cardiovascular system; entropy; filtering; heart rate variability; laser Doppler flowmetry time series; microvascular blood flow; multiscale analysis; Blood; Doppler effect; Entropy; Heart rate variability; Time series analysis; White noise; Laser Doppler flowmetry (LDF); microvascular blood flow; multiscale analysis; multiscale entropy; Adult; Entropy; Forearm; Humans; Laser-Doppler Flowmetry; Microvessels; Models, Cardiovascular; Regional Blood Flow; Signal Processing, Computer-Assisted;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2011.2160865
Filename :
5934586
Link To Document :
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