Deterministic 5G mmWave Large-Scale 3D Path Loss Model for Lagos Island, Nigeria

被引:6
作者
Hinga, Simon K.
Atayero, Aderemi A. [1 ]
机构
[1] Covenant Univ, Dept Elect & Informat Engn, Ota 112212, Nigeria
关键词
Propagation losses; Antennas; 5G mobile communication; Solid modeling; Three-dimensional displays; Radio transmitters; Predictive models; 5G; close-in model; floating intercept model; millimeter-wave; path loss model; WAVE PROPAGATION MEASUREMENTS; LOSS PREDICTION; RADIO PROPAGATION; COVERAGE; ENVIRONMENT;
D O I
10.1109/ACCESS.2021.3114771
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
5G millimeter wave (mmWave) application in mobile connectivity to realize high-speed, reliable communication is attributed with high path loss. This paper presents a detailed 3D ray-tracing technique at 28 GHz for Lagos Island to investigate five unique path loss scenarios: path loss, free space path loss with antenna pattern, free space path loss without antenna pattern, excess path loss with antenna pattern, and the excess path loss without antenna pattern for an urban environment. The Close-In (CI) model, Floating Intercept (FI) path loss model, and a root mean square error (RMSE) are used to model and evaluate the best path loss model for Lagos Island. The average achieved FI (alpha, beta, sigma) parameters were 189.92352, 0.1654, and 0.66948, While the average CI (eta, X sigma) parameters were 2.309355 and 56.236425. From all the scenarios evaluated, the lowest path loss exponent achieved was 0.45, while the highest path loss exponent was 3.8. We have established that the FI path loss model accurately characterizes path loss for the Lagos Island environment with the lowest RMSE of 0.0359 dB and the highest RSME of 0.0997 dB. In contrast, the CI model over-predict the path loss at 28 GHz with the lowest RMSE of 0.0495 dB and the highest RMSE of 2.2547 dB. This work opens up a new area of research on mm-Wave at 28 GHz in Lagos Island, and the results obtained from this work can be used to benchmark future studies on mmWave in a similar environment.
引用
收藏
页码:134270 / 134288
页数:19
相关论文
共 70 条
[1]   Channel Modeling and Over-the-Air Signal Quality at 3.5 GHz for 5G New Radio [J].
Adegoke, Elijah I. ;
Kampert, Erik ;
Higgins, Matthew D. .
IEEE ACCESS, 2021, 9 :11183-11193
[2]   Predicting Path Loss Distribution of an Area From Satellite Images Using Deep Learning [J].
Ahmadien, Omar ;
Ates, Hasan F. ;
Baykas, Tuncer ;
Gunturk, Bahadir K. .
IEEE ACCESS, 2020, 8 :64982-64991
[3]  
Akdeniz MR, 2013, IEEE GLOBE WORK, P105, DOI 10.1109/GLOCOMW.2013.6824970
[4]  
Akhpashev RV, 2016, INT CONF SEMINAR, P64, DOI 10.1109/EDM.2016.7538693
[5]   Millimeter Wave Propagation Measurements and Characteristics for 5G System [J].
Al-Samman, Ahmed M. ;
Azmi, Marwan Hadri ;
Al-Gumaei, Y. A. ;
Al-Hadhrami, Tawfik ;
Abd Rahman, Tharek ;
Fazea, Yousef ;
Al-Mqdashi, Abdulmajid .
APPLIED SCIENCES-BASEL, 2020, 10 (01)
[6]   Path Loss Model for Outdoor Parking Environments at 28 GHz and 38 GHz for 5G Wireless Networks [J].
Al-Samman, Ahmed M. ;
Abd Rahman, Tharek ;
Hindia, Mhd Nour ;
Daho, Abdusalama ;
Hanafi, Effariza .
SYMMETRY-BASEL, 2018, 10 (12)
[7]  
Al-Samman AM, 2018, 2018 IEEE 14TH INTERNATIONAL COLLOQUIUM ON SIGNAL PROCESSING & ITS APPLICATIONS (CSPA 2018), P7, DOI 10.1109/CSPA.2018.8368676
[8]   Indoor Corridor Wideband Radio Propagation Measurements and Channel Models for 5G Millimeter Wave Wireless Communications at 19 GHz, 28 GHz, and 38 GHz Bands [J].
Al-samman, Ahmed M. ;
Abd Rahman, Tharek ;
Azmi, Marwan Hadri .
WIRELESS COMMUNICATIONS & MOBILE COMPUTING, 2018,
[9]   Large-scale path loss models and time dispersion in an outdoor line-of-sight environment for 5G wireless communications [J].
Al-Samman, Ahmed M. ;
Rahman, Tharek A. ;
Azmi, Marwan H. ;
Hindia, M. N. .
AEU-INTERNATIONAL JOURNAL OF ELECTRONICS AND COMMUNICATIONS, 2016, 70 (11) :1515-1521
[10]   Comparative Study of Indoor Propagation Model Below and Above 6 GHz for 5G Wireless Networks [J].
Al-Samman, Ahmed Mohammed ;
Abd Rahman, Tharek ;
Al-Hadhrami, Tawfik ;
Daho, Abdusalama ;
Hindia, M. H. D. Nour ;
Azmi, Marwan Hadri ;
Dimyati, Kaharudin ;
Alazab, Mamoun .
ELECTRONICS, 2019, 8 (01)