Wi-Fi Backscatter System with Tag Sensors Using Multi-Antennas for Increased Data Rate and Reliability

被引:3
作者
Kim, Taeoh [1 ]
Park, Hyobeen [1 ]
Jung, Yunho [2 ]
Lee, Seongjoo [1 ]
机构
[1] Sejong Univ, Dept Informat & Commun Engn, Seoul 05006, South Korea
[2] Korea Aerosp Univ, Sch Elect & Informat Engn, Goyang 10540, Gyeonggi Do, South Korea
基金
新加坡国家研究基金会;
关键词
Wi-Fi; Wi-Fi backscatter; multiple antennas; Internet of Things; energy harvesting; THINGS IOT; INTERNET;
D O I
10.3390/s20051314
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
In this paper, we propose tag sensor using multi-antennas in a Wi-Fi backscatter system, which results in an improved data rate or reliability of the signal transmitted from a tag sensor to a reader. The existing power level modulation method, which is proposed to improve data rate in a Wi-Fi backscatter system, has low reliability due to the reduced distance between symbols. To address this problem, we propose a Wi-Fi backscatter system that obtains channel diversity by applying multiple antennas. Two backscatter methods are described for improving the data rate or reliability in the proposed system. In addition, we propose three low complexity demodulation methods to address the high computational complexity problem caused by multiple antennas: (1) SET (subcarrier energy-based threshold) method, (2) TCST (tag's channel state-based threshold) method, and (3) SED (similar Euclidean distance) method. In order to verify the performance of the proposed backscatter method and low complexity demodulation schemes, the 802.11 TGn (task group n) channel model was utilized in simulation. In this paper, the proposed tag sensor structure was compared with existing methods using only sub-channels with a large difference in received CSI (channel state information) values or adopting power-level modulation. The proposed scheme showed about 10 dB better bit error rate (BER) performance and throughput. Also, proposed low complexity demodulation schemes were similar in BER performance with a difference of up to 1 dB and the computational complexity was reduced by up to 60% compared to the existing Euclidean distance method.
引用
收藏
页数:20
相关论文
共 16 条
[1]  
Arm, 2018, ARMR CORT A75 SOFTW, P12
[2]   BackFi: High Throughput WiFi Backscatter [J].
Bharadia, Dinesh ;
Joshi, Kiran ;
Kotaru, Manikanta ;
Katti, Sachin .
ACM SIGCOMM COMPUTER COMMUNICATION REVIEW, 2015, 45 (04) :283-296
[3]   Decision making policy for RF energy harvesting enabled cognitive radios in decentralized wireless networks [J].
Darak, Sumit J. ;
Zhang, Honggang ;
Palicot, Jacques ;
Moy, Christophe .
DIGITAL SIGNAL PROCESSING, 2017, 60 :33-45
[4]  
Erceg V., 2004, TGn Channel Models
[5]   Internet of Things (IoT): A vision, architectural elements, and future directions [J].
Gubbi, Jayavardhana ;
Buyya, Rajkumar ;
Marusic, Slaven ;
Palaniswami, Marimuthu .
FUTURE GENERATION COMPUTER SYSTEMS-THE INTERNATIONAL JOURNAL OF ESCIENCE, 2013, 29 (07) :1645-1660
[6]   Planar Wireless Charging Technology for Portable Electronic Products and Qi [J].
Hui, S. Y. .
PROCEEDINGS OF THE IEEE, 2013, 101 (06) :1290-1301
[7]  
Kellogg B, 2016, 13TH USENIX SYMPOSIUM ON NETWORKED SYSTEMS DESIGN AND IMPLEMENTATION (NSDI '16), P151
[8]  
Kellogg B, 2014, SIGCOMM'14: PROCEEDINGS OF THE 2014 ACM CONFERENCE ON SPECIAL INTEREST GROUP ON DATA COMMUNICATION, P607, DOI [10.1145/2619239.2626319, 10.1145/2740070.2626319]
[9]   The Internet of Things (IoT): Applications, investments, and challenges for enterprises [J].
Lee, In ;
Lee, Kyoochun .
BUSINESS HORIZONS, 2015, 58 (04) :431-440
[10]   Dual-Band Eight-Antenna Array Design for MIMO Applications in 5G Mobile Terminals [J].
Li, Jianxing ;
Zhang, Xiaoke ;
Wang, Zhi ;
Chen, Xiaoming ;
Chen, Juan ;
Li, Yingsong ;
Zhang, Anxue .
IEEE ACCESS, 2019, 7 :71636-71644