DocumentCode :
766329
Title :
Local Holder exponent analysis of heart rate variability in preterm infants
Author :
Nakamura, Toru ; Horio, Hiroyuki ; Chiba, Yoshihide
Author_Institution :
Dept. of Syst. & Human Sci., Osaka Univ., Japan
Volume :
53
Issue :
1
fYear :
2006
Firstpage :
83
Lastpage :
88
Abstract :
Heart rate variability (HRV) displays scale-invariant fractal properties. Recent studies have revealed multifractal properties in the healthy human HRV, which could be characterized by singularities with various strength of local Holder exponents embedded in HRV. In this paper, HRV time series from preterm infants, whose autonomic nervous system undergoes dramatic development, were collected longitudinally. Changes in fractality/multifractality of those HRV time series as the postmenstrual age were examined in order to see if they could quantify development of the autonomic nervous system. Temporal structure of the singularities at several representative time scales was also analyzed to show that intersingular event intervals could be well described by "power law distribution", and the singular events appeared with age-dependent long-range correlation in its strength. Detailed analyses suggested that fractality and multifractality of HRV, respectively, could quantify the development of the respiratory center and the parasympathetic nervous system in the preterm infants. The results obtained in this study might be beneficial for detecting occurrences of life threatening singular events such as big apnea in preterm infants.
Keywords :
electrocardiography; fractals; medical signal processing; neurophysiology; paediatrics; pneumodynamics; time series; apnea; autonomic nervous system; heart rate variability time series; intersingular event intervals; local holder exponent analysis; multifractal properties; parasympathetic nervous system; postmenstrual age; power law distribution; preterm infants; respiratory center; scale-invariant fractal properties; Autonomic nervous system; Cardiology; Displays; Fluctuations; Fractals; Heart beat; Heart rate variability; Humans; Nervous system; Pediatrics; Autonomic nervous system; development; heart rate variability; infant; multifractal; Algorithms; Autonomic Nervous System; Diagnosis, Computer-Assisted; Electrocardiography; Fetal Heart; Fractals; Heart Rate; Humans; Infant, Newborn; Infant, Premature; Reproducibility of Results; Sensitivity and Specificity;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2005.859796
Filename :
1561523
Link To Document :
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