Performance Analysis of Physical-Layer Network Coding for IIoT Applications

被引:0
作者
Yassin, Alaa A. [1 ]
Saeed, Rashid A. [1 ]
Yousif, Ebtihal H. G. [1 ]
Khalifa, Othman O. [2 ,3 ]
机构
[1] Sudan Univ Sci & Technol, Dept Elect Engn, Khartoum, Sudan
[2] Inter Islamic Uni Malaysia, Dept Elect & Comp Engn, Kuala Lumpur, Malaysia
[3] Libyan Ctr Engn Res & Informat Technol, Bani Walid, Libya
来源
9TH INTERNATIONAL CONFERENCE ON MECHATRONICS ENGINEERING, ICOM 2024 | 2024年
关键词
Physical-layer Network Coding; IIoT; Symbol Error Rate; QAM; Rayleigh Fading Channel;
D O I
10.1109/ICOM61675.2024.10652293
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Physical-layer network coding (PNC) was introduced into wireless communication systems to improve system performance metrics such as error rates. The Industrial Internet of Things (IIoT) utilized the PNC concept to communicate robots together and computer applications with high data rates, low latency, and full diversity. A two-way relay network (TWRN) is a basic implementation of PNC in research. This paper provides a performance analysis of TWRN-PNC for IIOT applications over a Rayleigh fading channel employing high-order modulation. The theoretical framework of the proposed model is derived in closed form for the uplink and downlink phases. Additionally, the maximum likelihood (ML) and Latin square (LS) methods are considered for the mapping of superimposed signals to achieve the denoising-and-forward (DNF) relaying protocol in PNC. Theoretical and simulation results of average symbol error rate probability are demonstrated for both multiple access and end-to-end error, using square-quadrature amplitude modulation (QAM), 4-QAM, and 16-QAM modulation schemes, respectively, and simulated uplink throughput at the relay. The positive results are obtained in both simulation and exact results of high-order modulation using Monte Carlo simulation and reported the effectiveness of the approach across varying modulation levels. Throughput is approximately double that of traditional network links.
引用
收藏
页码:374 / 379
页数:6
相关论文
共 36 条
[1]  
Ali M, 2023, 2023 3 INT EM SMART, P1, DOI [10.1109/eSmarTA59349.2023.10293289, DOI 10.1109/ESMARTA59349.2023.10293289]
[2]  
Barakat Mohammed Elmogtaba, 2023, 2023 9th International Conference on Computer and Communication Engineering (ICCCE), P274, DOI 10.1109/ICCCE58854.2023.10246063
[3]   BER Analysis of Physical-Layer Network Coding in the AWGN Channel With Burst Pulses [J].
Cao, Feng-Feng ;
Yu, Qi-Yue ;
Xiang, Wei ;
Meng, Wei-Xiao .
IEEE ACCESS, 2016, 4 :9958-9968
[4]   Bandwidth-Efficient Coded Modulation Schemes for Physical-Layer Network Coding with High-Order Modulations [J].
Chen, Pingping ;
Liew, Soung Chang ;
Shi, Long .
IEEE TRANSACTIONS ON COMMUNICATIONS, 2017, 65 (01) :147-160
[5]  
Elbasheir M. S, 2023, 2023 IEEE 3 INT C SI, P1
[6]   Multi-Technology Multi-Operator Site Sharing: Compliance Distance Analysis for EMF Exposure [J].
Elbasheir, Mohammed S. ;
Saeed, Rashid A. ;
Edam, Salaheldin .
SENSORS, 2023, 23 (03)
[7]  
Elbasheir S, 2021, 2021 IEEE ASIA PAC C, P1
[8]   Performance of Physical Layer Network Coding in a Frequency-selective Fading Channel [J].
Gacanin, Haris ;
Adachi, Fumiyuki .
2009 IEEE 20TH INTERNATIONAL SYMPOSIUM ON PERSONAL, INDOOR AND MOBILE RADIO COMMUNICATIONS, 2009, :928-932
[9]  
Gaid A.S.A., 2024, J. Nano Electr. Physics, V16
[10]   A Novel Enhanced Quantum PSO for Optimal Network Configuration in Heterogeneous Industrial IoT [J].
Ghorpade, Sheetal N. ;
Zennaro, Marco ;
Chaudhari, Bharat S. ;
Saeed, Rashid A. ;
Alhumyani, Hesham ;
Abdel-Khalek, S. .
IEEE ACCESS, 2021, 9 :134022-134036