DocumentCode :
1654672
Title :
Detection of perinatal hypoxia using time-frequency analysis of heart rate variability signals
Author :
Dong, Shuai ; Boashash, Boualem ; Azemi, Ghasem ; Lingwood, Barbara E. ; Colditz, Paul B.
Author_Institution :
UQ Centre for Clinical Res., Univ. of Queensland, Herston, QLD, Australia
fYear :
2013
Firstpage :
939
Lastpage :
943
Abstract :
This paper presents a time-frequency approach to detect perinatal hypoxia by characterizing the nonstationary nature of heart rate variability (HRV) signals. Quadratic time-frequency distributions (TFDs) are used to represent the HRV signals. Six features based on the instantaneous frequency (IF) of the lower frequency components of HRV signals are selected to establish a classifier using support vector machine. The classifier is trained and tested using the signals recorded from a neonatal piglet model under a controlled hypoxic condition, which provides reliable annotations on the data. The method shows superior performance in the detection of hypoxic epochs with sensitivity (89.8%), specificity (100%) and total accuracy (94.9%) compared with that based on frequency domain features, indicating that nonstationarity should be taken into account for a more accurate assessment of the newborn status with possible hypoxia when analyzing HRV signals.
Keywords :
cardiology; medical signal processing; support vector machines; time-frequency analysis; HRV signals; TFD; heart rate variability signals; neonatal piglet model; perinatal hypoxia detection; quadratic time-frequency distributions; support vector machine; time-frequency analysis; Accuracy; Feature extraction; Frequency-domain analysis; Heart rate variability; Kernel; Pediatrics; Support vector machines; heart rate variability; nonstationarity; perinatal hypoxia; time-frequency distribution;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Acoustics, Speech and Signal Processing (ICASSP), 2013 IEEE International Conference on
Conference_Location :
Vancouver, BC
ISSN :
1520-6149
Type :
conf
DOI :
10.1109/ICASSP.2013.6637787
Filename :
6637787
Link To Document :
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