Throughput Maximization for Energy Harvesting based Relay Cooperative Backscattering Transmission

被引:1
作者
Wang, Wen-Jing [1 ]
Xu, Kangjun [1 ]
Zhen, Li [1 ]
Yu, Keping [2 ]
Bashir, Ali Kashif [3 ,4 ]
Garg, Sahil [5 ]
机构
[1] Xian Univ Posts & Telecommun, Shaanxi Key Lab Informat Commun Network & Secur, Xian, Peoples R China
[2] Waseda Univ, Global Informat & Telecommun Inst, Tokyo, Japan
[3] Manchester Metropolitan Univ, Dept Comp & Math, Manchester, Lancs, England
[4] Univ Elect Sci & Technol China, Sch Informat & Commun Engn, Chengdu, Peoples R China
[5] Ecole Technol Super, Elect Engn Dept, Montreal, PQ H3C 1K3, Canada
来源
2021 IEEE INTERNATIONAL CONFERENCE ON COMMUNICATIONS WORKSHOPS (ICC WORKSHOPS) | 2021年
基金
中国国家自然科学基金;
关键词
COMMUNICATION; INTERNET;
D O I
10.1109/ICCWorkshops50388.2021.9473528
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
In this paper, we develop a time allocation strategy that enhances transmission efficiency of small-size Internet of Mobile Things (IoMT) devices by relaying the information backscattered from user. The system works in a slotted fashion, where each transmission slot is divided into two phases. Specifically, in phase one, user backscatters downlink signals from power beacon (PB) and relay harvests the radio frequency (RF) energy from signal backscattered by user and that transmitted by PB. In phase two, relay forwards the decoded information to destination with harvested RF energy. We formulate the optimization problem and develop an optimal time allocation strategy maximizing throughput considering adaptively adjusted backscattering coefficient and battery capacity constraint at relay. We investigate the effect of transmit power and relay location on the throughput for infinite/finite battery capacity scenario, respectively. Numerical results verify that the proposed time allocation strategy outperforms that with fixed backscattering coefficient.
引用
收藏
页数:5
相关论文
共 16 条
[1]  
Baroudi U., 2012, 2012 IEEE 11th International Conference on Trust, Security and Privacy in Computing and Communications (TrustCom), P1976, DOI 10.1109/TrustCom.2012.231
[2]   Backscatter Communication and RFID: Coding, Energy, and MIMO Analysis [J].
Boyer, Colby ;
Roy, Sumit .
IEEE TRANSACTIONS ON COMMUNICATIONS, 2014, 62 (03) :770-785
[3]   Building An SVM Classifier for Automated Selection of Big Data [J].
Ding, Junhua ;
Wang, Jiabin ;
Kang, Xiaojun ;
Hu, Xin-Hua .
2017 IEEE 6TH INTERNATIONAL CONGRESS ON BIG DATA (BIGDATA CONGRESS 2017), 2017, :15-22
[4]  
Gradshteyn I. S., 2015, TABLE INTEGRALS SERI
[5]   Wireless Information and Power Transfer for IoT Applications in Overlay Cognitive Radio Networks [J].
Gurjar, Devendra S. ;
Nguyen, Ha H. ;
Hoang Duong Tuan .
IEEE INTERNET OF THINGS JOURNAL, 2019, 6 (02) :3257-3270
[6]  
Laurence G, GARTNER SAYS 5 8 BIL
[7]   Optimal Reliability in Energy Harvesting Industrial Wireless Sensor Networks [J].
Lei, Lei ;
Kuang, Yiru ;
Shen, Xuemin ;
Yang, Kan ;
Qiao, Jian ;
Zhong, Zhangdui .
IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS, 2016, 15 (08) :5399-5413
[8]   Backscatter Communication via Harvest-Then-Transmit Relaying [J].
Li, Dong .
IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2020, 69 (06) :6843-6847
[9]   Capacity of Backscatter Communication Systems With Tag Selection [J].
Li, Dong ;
Peng, Wei ;
Hu, Fengye .
IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2019, 68 (10) :10311-10314
[10]   Wireless-Powered Device-to-Device Communications With Ambient Backscattering: Performance Modeling and Analysis [J].
Lu, Xiao ;
Jiang, Hai ;
Niyato, Dusit ;
Kim, Dong In ;
Han, Zhu .
IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS, 2018, 17 (03) :1528-1544