Motion Detection Method for Clutter Rejection in the Bio-Radar Signal Processing
Commenced in January 2007
Frequency: Monthly
Edition: International
Paper Count: 32799
Motion Detection Method for Clutter Rejection in the Bio-Radar Signal Processing

Authors: Carolina Gouveia, José Vieira, Pedro Pinho

Abstract:

The cardiopulmonary signal monitoring, without the usage of contact electrodes or any type of in-body sensors, has several applications such as sleeping monitoring and continuous monitoring of vital signals in bedridden patients. This system has also applications in the vehicular environment to monitor the driver, in order to avoid any possible accident in case of cardiac failure. Thus, the bio-radar system proposed in this paper, can measure vital signals accurately by using the Doppler effect principle that relates the received signal properties with the distance change between the radar antennas and the person’s chest-wall. Once the bio-radar aim is to monitor subjects in real-time and during long periods of time, it is impossible to guarantee the patient immobilization, hence their random motion will interfere in the acquired signals. In this paper, a mathematical model of the bio-radar is presented, as well as its simulation in MATLAB. The used algorithm for breath rate extraction is explained and a method for DC offsets removal based in a motion detection system is proposed. Furthermore, experimental tests were conducted with a view to prove that the unavoidable random motion can be used to estimate the DC offsets accurately and thus remove them successfully.

Keywords: Bio-signals, DC Component, Doppler Effect, ellipse fitting, radar, SDR.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1340482

Procedia APA BibTeX Chicago EndNote Harvard JSON MLA RIS XML ISO 690 PDF Downloads 748

References:


[1] C. Li, V. Lubecke, O. Boric-Lubecke, and J. Lin, ”A Review on Recent Advances in Doppler Radar Sensors for Noncontact Healthcare Monitoring,” IEEE Transactions on Microwave Theory and Techniques, 61, 5, 2013, pp. 2046-2060.
[2] D. Malafaia, et. al., ”Cognitive Bio-Radar: The Natural Evolution of Bio-Signals Measurement,” Journal of Medical Systems, 40, 10, 2016, p. 219.
[3] O. Boric-Lubecke, V. Lubecke, A. Droitcour, B. Park, and A. Singh, Doppler Radar Physiological Sensing, John Wiley & Sons, 2015.
[4] J. C. Lin, Non-Invasive Microwave Measurement of Respiration, Proceedings of the IEEE, 63, 10, 1975, p. 1530.
[5] J. C. Lin, E. Dawe and J. Majcherek, A Non-Invasive Microwave Apnea Detector, Proceedings of the San Diego Biomedical Symposium, 16, 1977, p. 441.
[6] J. C. Lin, J. Kiernicki, M. Kiernicki and P. B. Wollschlaeger, Microwave Apexcardiography, IEEE Transactions on Microwave Theory and Techniques, 27, 6, 1979, pp. 618-620.
[7] K. H. Chan, J. C. Lin, Microprocessor-based Cardiopulmonary Rate Monitor, Medical and Biological Engineering and Computing, Springer, 25, 1, 1987, pp. 41-44.
[8] C. Li, X. Yu, C. M. Lee, D. Li, L. Ran, and J. Lin, ”High Sensitivity Software Configurable 5.8 GHz Radar Sensor Receiver Chip in 0.13 μm CMOS for Non-Contact Vital Sign Detection,” IEEE Transactions on Microwave Theory and Techniques, 58, 5, 2010, pp. 1410-1419.
[9] D. Malafaia, J. Vieira and A. Tom´e, ”Improving Performance of Bio-Radars for Remote Heartbeat and Breathing Detection by using Cyclostationary Features,” Proceedings of the International Joint Conference on Biomedical Engineering Systems and Technologies, 4, pp. 344-349.
[10] M. Zakrzewski, H. Raittinen, and J. Vanhala, ”Comparison of Center Estimation Algorithms for Heart and Respiration Monitoring with Microwave Doppler Radar,” IEEE Sensors Journal, 12, 3, 2012, pp. 627-634.
[11] Q.Lv, Y. Dong, Y. Sun, C. Li and L. Ran, ”Detection of bio-signals from body movement based on high-dynamic-range Doppler radar sensor”, RF and Wireless Technologies for Biomedical and Healthcare Applications (IMWS-BIO), 2015 IEEE MTT-S, 2015 International Microwave Workshop Series, 2015, pp. 88-89.
[12] , A. Vergara, N. Petrochilos, O. Boric-Lubecke, A. Host-Madsen and V. Lubecke, ”Blind source separation of human body motion using direct conversion Doppler radar”, Microwave Symposium Digest, 2008 IEEE MTT-S International, 2008, pp. 1321-1324.
[13] B. Park, V. Lubecke, O. Boric-Lubecke, and A. Høst-Madsen, ”Center Tracking Quadrature Demodulation for a Doppler Radar Motion Detector,” Microwave Symposium IEEE/MTT-S International, 2007, pp. 1323-1326.
[14] O. Gal, ”Ellipse Fit using Least Squares criterion”, http://it.mathworks.com/matlabcentral/fileexchange/3215-fit-ellipse, accessed: 2018