Intrabody Communication Using Different Ground Configurations in Digital Door Lock
Commenced in January 2007
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Edition: International
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Intrabody Communication Using Different Ground Configurations in Digital Door Lock

Authors: Daewook Kim, Gilwon Yoon

Abstract:

Intrabody communication (IBC) is a new way of transferring data using human body as a medium. Minute current can travel though human body without any harm. IBC can remove electrical wires for human area network. IBC can be also a secure communication network system unlike wireless networks which can be accessed by anyone with bad intentions. One of the IBC systems is based on frequency shift keying modulation where individual data are transmitted to the external devices for the purpose of secure access such as digital door lock. It was found that the quality of IBC data transmission was heavily dependent on ground configurations of electronic circuits. Reliable IBC transmissions were not possible when both of the transmitter and receiver used batteries as circuit power source. Transmission was reliable when power supplies were used as power source for both transmitting and receiving sites because the common ground was established through the grounds of instruments such as power supply and oscilloscope. This was due to transmission dipole size and the ground effects of floor and AC power line. If one site used battery as power source and the other site used the AC power as circuit power source, transmission was possible.

Keywords: Frequency shift keying, Ground, Intrabody, Communication, door lock.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1094143

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References:


[1] Sung Weon Kang, Nak Ung Eom, "ETRI Human body Communications,” The Korean Institute of Communications and Information Sciences collection of dissertations, pp. 414-415, 2009.
[2] S. Shimamoto, Adbullah M. Alsehab, N. Kobayashi, D. Dovchinbazar, Jordi Augud Ruiz, "Future Applications of Body Area Communications," 6Th Communications & Signal Processing International Conference, Singapore, pp. 1-5, 2007
[3] H.C. Lukaski, P.E. Johnson, W.W. Bolonchuk, G.I. Lykken, "Assessment of fat-free mass using bioelectrical impedance measurements of the human body,” The American Journal of Clinical Nutrition, vol. 41, no. 4, pp 810-817, April 1985.
[4] R. Patterson, "Body fluid determinations using multiple impedance measurements,” IEEE Engineering in Medicine and Biology Magazine, vol. 8, issue 1, pp 16-18, March 1989.
[5] T. Handa, S. Shoji, S. Ike, S. Takeda, T. Sekiguchi, "A very Low-Power Consumption Wireless ECG Monitoring System Using Body as a Signal Transmission Medium,” International Conference on Solid State Sensors and Actuators, ,Chicago, USA, 1997
[6] Hongjie Zhu, Ruoyu Xu, Jie Yuan, "High speed Intra-Body Communication for Personal Health Care,” 31st Annual International Conference of the IEEE EMBS, Minnesota, USA, 2009
[7] Hyung-Il Park, In-Gi Lim, Sungweon Kang, "Human Body Communication System with FSBT,” 14Th IEEE International Symposium on Consumer Electronics, 2010
[8] T. G. Zimmerman, "Personal Area Networks : Near-field Intrabody Communication,” IBM Systems Journal, vol. 35, no. 3&4, pp. 609-617, 1996.
[9] N. Matsushita, S. Tajima, Y. Ayatsuka, J. Rekimoto, "Wearable Key: Device for Personalizing nearby environment," Proceedings of the Fourth International Symposium on Wearable Computers, Seattle, pp. 119-126, 2000.
[10] K. Hachisuka, A. Nakata, T. Takeda, Y. Terauchi, K. Shiba, K. Sasaki, H. Hosaka, K, Itao, "Development and Performance Analysis of an Intra-Body Communication Device,” International Conference on Solid State Sensors, Actuators and Microsystems, Boston, USA, pp. 1722-1725, 2003.
[11] Seong-Jun Song, Seung Jin Lee, Namjun Cho, Hoi-Jun Yoo, "Low Power Wearable Audio Player Using Human Body Communications," IEEE Wearable Computers international Symposium, pp. 125-126, 2006.
[12] B. Berglund, P. Hassmén, "Sources and effects of low-frequency noise,” Acoustical Society of America, vol. 99, no. 5, pp. 2985-3002, 1996.
[13] N. Cho, J. Yoo, S-J Song, J. Lee, S. Jeon, H-J Yoo, "The Human Body Characteristics as a Signal Transmission Medium for Intrabody Communication," IEEE Trans. Microwave Theory and Techniques, vol. 55, no. 5, pp 1080 - 1086, 2007.