Affiliation:
1. Department of Engineering, University of Messina, 98166 Messina, Italy
2. Department of Electrical and Computer Engineering, Texas Tech University, Lubbock, TX 79409, USA
Abstract
This paper analyzes the beneficial effects on phase detection arising from the motion of an ac-coupled Doppler radar. Indeed, although the presence of an ac coupling stage suppresses the dc offset after the receiver RF output, due to the coupling capacitor, a high-pass behavior is introduced; the presence of a high-pass behavior leads to signal distortion, particularly for low Doppler frequencies, which are typical in many biomedical or industrial applications. Since the target displacement is usually extracted from the phase history, this effect might, in turn, worsen the overall accuracy of the system. Moreover, if the target alternates stationary and moving time intervals, the phase detection step becomes challenging. Indeed, during the stationary time, the output of the RF front-end shows only noise fluctuations that, in turn, result in uncorrelated phases which might be confused with the real target displacement. This negative effect might be avoided by keeping the radar continuously moving, thus exploiting what is usually considered a state that is negative and worthy of attention. In this contribution, this effect is addressed from a different perspective, and ad hoc experimental case studies are shown to demonstrate the effectiveness of the proposed system. This task has been accomplished through theoretical analysis and related experimental activity.
Reference34 articles.
1. Yavari, E., Lubecke, V., and Borić-Lubecke, O. (2012, January 15–18). Ac/dc coupling effects on CW and pulse transmission modes in Doppler radar physiological monitoring system. Proceedings of the 2012 IEEE Topical Conference on Biomedical Wireless Technologies, Networks, and Sensing Systems (BioWireleSS), Santa Clara, CA, USA.
2. Range correlation and I/Q performance benefits in single-chip silicon Doppler radars for noncontact cardiopulmonary monitoring;Droitcour;IEEE Trans. Microw. Theory Tech.,2004
3. Vergara, A.M., Borić-Lubecke, O., and Lubecke, V.M. (2008, January 20–25). Dc information preservation for cardiopulmonary monitor utilizing CW doppler radar. Proceedings of the 2008 30th Annual International Conference of the IEEE Engineering in Medicine and Biology Society, Vancouver, BC, Canada.
4. Cardillo, E., Sapienza, G., Ferro, L., Li, C., and Caddemi, A. (2023, January 11–16). Radar assistive system for people with neurodegenerative disorders through head motion and eyes blinking detection. Proceedings of the International Microwave Symposium (IMS), San Diego, CA, USA.
5. Cardillo, E., Ferro, L., and Li, C. (December, January 29). Microwave and millimeter-wave radar circuits for the next generation contact-less in-cabin detection. Proceedings of the Asia-Pacific Microwave Conference APMC’22, Yokohama, Japan.
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献