Performance Analysis in UAV-enabled Relay with NOMA under Nakagami-m Fading Considering Adaptive Power Splitting

被引:5
作者
Anh-Nhat Nguyen [1 ]
Van Nhan Vo [2 ]
So-In, Chakchai [1 ]
Dac-Binh Ha [3 ]
Van-Truong Truong [3 ]
机构
[1] Khon Kaen Univ, Dept Comp Sci, Khon Kaen 40002, Thailand
[2] Duy Tan Univ, Fac Informat Technol, Da Nang 550000, Vietnam
[3] Duy Tan Univ, Fac Elect & Elect Engn, Danang 550000, Vietnam
来源
2021 18TH INTERNATIONAL JOINT CONFERENCE ON COMPUTER SCIENCE AND SOFTWARE ENGINEERING (JCSSE-2021) | 2021年
关键词
unmanned aerial vehicle; energy harvesting; adaptive power splitting; nonorthogonal multiple access;
D O I
10.1109/JCSSE53117.2021.9493850
中图分类号
TP31 [计算机软件];
学科分类号
081202 ; 0835 ;
摘要
This paper investigates the system performance of an energy harvesting (EH) unmanned aerial vehicle (UAV)enabled relay (UR) in the Internet of Things (IoT) under Nakagami-m fading, where the UR applied time switching (TS) and adaptive power splitting (APS) (U-TSAPS). To increase throughput, all links (i.e., from the base station (BS) to the UR and from the UR to the IoT device (Id) clusters) are transmitted using the nonorthogonal multiple access (NOMA) technique. The U-TSAPS protocol is divided into two stages. In the first stage, the BS chooses the best antenna for transmitting the signal to the UR. The UR then divides the received signal into two streams, one for information processing and the other for the EH. In the second stage, the UR uses the decode-and-forward (DF) scheme to send the obtained signal to the best far device (BFD) in the far cluster and the best near device (BND) in the near cluster. Under imperfect channel state information (ICSI) details, we derive closed-form expressions for the outage probability (OP) of BFD and BND with the APS ratio to evaluate device efficiency. These derivations are also used to evaluate the throughput of the system under consideration. Monte Carlo simulations are used to validate our system.
引用
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页数:6
相关论文
共 20 条
[1]   Internet of Things (IoT) and Agricultural Unmanned Aerial Vehicles (UAVs) in smart farming: A comprehensive review [J].
Boursianis, Achilles D. ;
Papadopoulou, Maria S. ;
Diamantoulakis, Panagiotis ;
Liopa-Tsakalidi, Aglaia ;
Barouchas, Pantelis ;
Salahas, George ;
Karagiannidis, George ;
Wan, Shaohua ;
Goudos, Sotirios K. .
INTERNET OF THINGS, 2022, 18
[2]   Survey on UAV Cellular Communications: Practical Aspects, Standardization Advancements, Regulation, and Security Challenges [J].
Fotouhi, Azade ;
Qiang, Haoran ;
Ding, Ming ;
Hassan, Mahbub ;
Giordano, Lorenzo Galati ;
Garcia-Rodriguez, Adrian ;
Yuan, Jinhong .
IEEE COMMUNICATIONS SURVEYS AND TUTORIALS, 2019, 21 (04) :3417-3442
[3]   Survey of Important Issues in UAV Communication Networks [J].
Gupta, Lav ;
Jain, Raj ;
Vaszkun, Gabor .
IEEE COMMUNICATIONS SURVEYS AND TUTORIALS, 2016, 18 (02) :1123-1152
[4]   Survey on Unmanned Aerial Vehicle Networks for Civil Applications: A Communications Viewpoint [J].
Hayat, Samira ;
Yanmaz, Evsen ;
Muzaffar, Raheeb .
IEEE COMMUNICATIONS SURVEYS AND TUTORIALS, 2016, 18 (04) :2624-2661
[5]   Joint Position, Decoding Order, and Power Allocation Optimization in UAV-Based NOMA Downlink Communications [J].
Hu, Dingkun ;
Zhang, Qi ;
Li, Quanzhong ;
Qin, Jiayin .
IEEE SYSTEMS JOURNAL, 2020, 14 (02) :2949-2960
[6]  
Hua M, 2017, INT CONF WIRE COMMUN
[7]   Performance Analysis of UAV Relay Assisted IoT Communication Network Enhanced With Energy Harvesting [J].
Ji, Baofeng ;
Li, Yuqi ;
Zhou, Benchuan ;
Li, Chunguo ;
Song, Kang ;
Wen, Hong .
IEEE ACCESS, 2019, 7 :38738-38747
[8]  
Judd K.L., 2012, Quadrature methods presented at university of Chicago's initiative for computational economics
[9]  
Kaur N., 2017, IEEE SYST J, V11
[10]   Performance Analysis for Downlink Relaying Aided Non-Orthogonal Multiple Access Networks With Imperfect CSI Over Nakagami-m Fading [J].
Men, Jinjin ;
Ge, Jianhua ;
Zhang, Chensi .
IEEE ACCESS, 2017, 5 :998-1004