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Design of galvanic coupling intra-body communication transceiver using direct sequence spread spectrum technology
Chen, W. K.1,2; Wei, Z. L.1,2; Gao, Y. M.1,2; Vasic, Z. Lucev3; Cifrek, M.3; Vai, M.I2,4; Du, M.1,5; Pun, S. H.4
2020-04-29
Source PublicationIEEE Access
ISSN2169-3536
Volume8Pages:84123-84133
Abstract

Intra-body communication (IBC) uses the human body as the transmission medium for electrical signals, and it features the following advantages: low power consumption, strong anti-interference ability, high data security, and broad application scenarios. However, some technical issues still need to be addresses, such as the choice of the best modulation and demodulation scheme in different application scenarios, influence of human activity on IBC performance, variable signal-to-noise ratio (SNR), and influence of transmission distance change on different modulation and demodulation methods. This paper adopts direct sequence spread spectrum (DSSS) communication and phase modulation to realize DSSS-differential phase shift keying (DPSK) and DPSK modulation transmission of baseband data. Moreover, the Costas loop method is employed to achieve reliable symbol recovery. Under the same conditions, in vivo experiments were conducted to compare the performance of DSSS-DPSK and DPSK galvanic coupling IBC transceivers. Notably, these transceivers are affected by the changes in SNR, transmission distance, and human activities. Results show that the bit error rate (BER) of the DPSK scheme is 40 times larger than the DSSS-DPSK scheme in a 30 cm channel length and different SNR experiments. When the BER performance changes from extremely poor (1.40× 10) to excellent (1.51×10), the SNR of DSSS-DPSK scheme only needs to be improved by 16 dB. In contrast, when the BER performance changes from extremely poor (1.54× 10) to good (1.65× 10), the SNR of DPSK scheme needs to be improved by 25 dB. With a SNR of -5 dB, the BER ratios of the DPSK scheme is 7 times larger than the DSSS-DPSK scheme. Also, DSSS-DPSK scheme is more sensitive to changes in motion status than DPSK.

KeywordIntra-body Communication Galvanic Coupling Ibc Transceiver Bit Error Rate Direct Sequence Spread Spectrum (Dsss)
DOI10.1109/ACCESS.2020.2991206
URLView the original
Indexed BySCIE
Language英語English
WOS Research AreaComputer Science ; Engineering ; Telecommunications
WOS SubjectComputer Science, Information Systems ; Engineering, Electrical & Electronic ; Telecommunications
WOS IDWOS:000549525800003
PublisherIEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC445 HOES LANE, PISCATAWAY, NJ 08855-4141
Scopus ID2-s2.0-85084947114
Fulltext Access
Citation statistics
Document TypeJournal article
CollectionFaculty of Science and Technology
THE STATE KEY LABORATORY OF ANALOG AND MIXED-SIGNAL VLSI (UNIVERSITY OF MACAU)
DEPARTMENT OF ELECTRICAL AND COMPUTER ENGINEERING
Corresponding AuthorGao, Y. M.
Affiliation1.College of Physics and Information Engineering, Fuzhou University, Fuzhou, 350116, China
2.Key Laboratory of Medical Instrumentation and Pharmaceutical Technology of Fujian Province, Fuzhou, 350116, China
3.Faculty of Electrical Engineering and Computing, University of Zagreb, Zagreb, 10000, Croatia
4.Department of Electrical and Computer Engineering, Faculty of Science and Technology, University of Macau, 999078, Macao
5.State Key Laboratory of Analog and Mixed-Signal VLSI, University of Macau, 999078, Macao
6.Key Laboratory of Eco-Industrial Green Technology of Fujian Province, Wuyi University, Nanping, 354300, China
Recommended Citation
GB/T 7714
Chen, W. K.,Wei, Z. L.,Gao, Y. M.,et al. Design of galvanic coupling intra-body communication transceiver using direct sequence spread spectrum technology[J]. IEEE Access, 2020, 8, 84123-84133.
APA Chen, W. K.., Wei, Z. L.., Gao, Y. M.., Vasic, Z. Lucev., Cifrek, M.., Vai, M.I., Du, M.., & Pun, S. H. (2020). Design of galvanic coupling intra-body communication transceiver using direct sequence spread spectrum technology. IEEE Access, 8, 84123-84133.
MLA Chen, W. K.,et al."Design of galvanic coupling intra-body communication transceiver using direct sequence spread spectrum technology".IEEE Access 8(2020):84123-84133.
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