DocumentCode :
78653
Title :
Noncontact Accurate Measurement of Cardiopulmonary Activity Using a Compact Quadrature Doppler Radar Sensor
Author :
Wei Hu ; Zhangyan Zhao ; Yunfeng Wang ; Haiying Zhang ; Fujiang Lin
Author_Institution :
Dept. of Electron. Sci. & Technol., Univ. of Sci. & Technol. of China, Hefei, China
Volume :
61
Issue :
3
fYear :
2014
fDate :
Mar-14
Firstpage :
725
Lastpage :
735
Abstract :
The designed sensor enables accurate reconstruction of chest-wall movement caused by cardiopulmonary activities, and the algorithm enables estimation of respiration, heartbeat rate, and some indicators of heart rate variability (HRV). In particular, quadrature receiver and arctangent demodulation with calibration are introduced for high linearity representation of chest displacement; 24-bit ADCs with oversampling are adopted for radar baseband acquisition to achieve a high signal resolution; continuous-wavelet filter and ensemble empirical mode decomposition (EEMD) based algorithm are applied for cardio/pulmonary signal recovery and separation so that accurate beat-to-beat interval can be acquired in time domain for HRV analysis. In addition, the wireless sensor is realized and integrated on a printed circuit board compactly. The developed sensor system is successfully tested on both simulated target and human subjects. In simulated target experiments, the baseband signal-to-noise ratio (SNR) is 73.27 dB, high enough for heartbeat detection. The demodulated signal has 0.35% mean squared error, indicating high demodulation linearity. In human subject experiments, the relative error of extracted beat-to-beat intervals ranges from 2.53% to 4.83% compared with electrocardiography (ECG) R-R peak intervals. The sensor provides an accurate analysis for heart rate with the accuracy of 100% for p = 2% and higher than 97% for p = 1%.
Keywords :
Doppler radar; calibration; cardiovascular system; demodulation; electrocardiography; feature extraction; mean square error methods; medical signal processing; pneumodynamics; printed circuits; signal resolution; signal sampling; time-domain analysis; wireless sensor networks; ECG; HRV analysis; R-R peak intervals; arctangent demodulation; baseband signal-to-noise ratio; beat-to-beat interval; calibration; cardio-pulmonary signal recovery; cardio-pulmonary signal separation; cardiopulmonary activity; chest displacement; chest-wall movement reconstruction; compact quadrature Doppler radar sensor; continuous-wavelet filter; designed sensor; electrocardiography; ensemble empirical mode decomposition based algorithm; extracted beat-to-beat intervals; heart rate variability; heartbeat detection; heartbeat rate; high linearity representation; mean squared error; noncontact accurate measurement; oversampling; printed circuit board; quadrature receiver; radar baseband acquisition; relative error; respiration estimation; signal resolution; simulated target experiments; time-domain acquisition; wireless sensor; Baseband; Demodulation; Doppler radar; Heart beat; Heart rate variability; Receivers; Arctangent demodulation; Doppler radar; cardiopulmonary; heart rate variability (HRV); noncontact;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2013.2288319
Filename :
6654242
Link To Document :
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