Performance of mmWave Ray Tracing Outdoor Channel Model Exploiting Antenna Directionality

被引:0
作者
Kumari, Sheeba M. [1 ]
Kumar, Navin [2 ]
Prasad, Ramjee [3 ]
机构
[1] VTU, Dept ECE, Bangalore, Karnataka, India
[2] Amrita Vishwa Vidyapeetham, Amrita Sch Engn, Dept ECE, Bangalore, Karnataka, India
[3] Aarhus Univ, Herning, Denmark
来源
2020 IEEE 3RD 5G WORLD FORUM (5GWF) | 2020年
关键词
5G; mmWave; ray tracing; path loss model; crossroads; 5G;
D O I
暂无
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The millimeter (mmWave) 5G new radio (NR) aims to provide orders of magnitude greater capacity through increased bandwidth and beamforming assisted narrow beam transmissions. The assumption of directional antennas with narrow radiating beams will reduce the number of contributing multipaths causing the channel to be sparser and simpler than the omnidirectional microwave channel. In this paper, we used a custom ray tracing model to study the behavior of directional mmWave urban micro (UMi) street canyon (SC) links. The proposed channel model harnesses the higher attenuation in high frequency mmWaves and the spatial filtering of directional antennas to reduce ray tracing complexity. The potential of this low complexity model has been evaluated through comprehensive simulation for both line of sight and non-line of sight mmWave communications at ranges up to 200m with different transmitter and receiver geometries. The impact of crossroad gaps on channel performance in a real urban SC 5G outdoor network design is also formulated. Several interesting insights have been derived. The strength of the proposed model constitutes path loss predictions at varying positions, frequency, and street orientation with/ without sidewall discontinuities.
引用
收藏
页码:607 / 612
页数:6
相关论文
共 11 条
[1]  
El-Sallabi H. M., 1988, IEEE VEH TECHN C, P2383
[2]   5G 3GPP-like Channel Models for Outdoor Urban Microcellular and Macrocellular Environments [J].
Haneda, Katsuyuki ;
Zhang, Jianhua ;
Tian, Lei ;
Liu, Guangyi ;
Zheng, Yi ;
Asplund, Henrik ;
Li, Jian ;
Wang, Yi ;
Steer, David ;
Li, Clara ;
Balercia, Tommaso ;
Lee, Sunguk ;
Kim, YoungSeok ;
Ghosh, Amitava ;
Thomas, Timothy ;
Nakamura, Takehiro ;
Kakishima, Yuichi ;
Imai, Tetsuro ;
Papadopoulas, Haralabos ;
Rappaport, Theodore S. ;
MacCartney, George R., Jr. ;
Samimi, Mathew K. ;
Sun, Shu ;
Koymen, Ozge ;
Hur, Sooyoung ;
Park, Jeongho ;
Zhang, Charlie ;
Mellios, Evangelos ;
Molisch, Andreas F. ;
Ghassemzadeh, Saeed S. ;
Ghosh, Arun .
2016 IEEE 83RD VEHICULAR TECHNOLOGY CONFERENCE (VTC SPRING), 2016,
[3]   Millimeter-Wave Communications: Physical Channel Models, Design Considerations, Antenna Constructions, and Link-Budget [J].
Hemadeh, Ibrahim A. ;
Satyanarayana, Katla ;
El-Hajjar, Mohammed ;
Hanzo, Lajos .
IEEE COMMUNICATIONS SURVEYS AND TUTORIALS, 2018, 20 (02) :870-913
[4]  
Ju S., 2018, 2018 IEEE GLOBAL COM, P1
[5]   Spatially Consistent Street-by-Street Path Loss Model for 28-GHz Channels in Micro Cell Urban Environments [J].
Karttunen, Aki ;
Molisch, Andreas F. ;
Hur, Sooyoung ;
Park, Jeongho ;
Zhang, Charlie Jianzhong .
IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS, 2017, 16 (11) :7538-7550
[6]   Channel model for simultaneous backhaul and access for mmWave 5G outdoor street canyon channel [J].
Kumari, M. Sheeba ;
Kumar, Navin .
WIRELESS NETWORKS, 2020, 26 (08) :5997-6013
[7]  
Kumari MS, 2019, EUR CONF NETW COMMUN, P106, DOI [10.1109/EuCNC.2019.8802001, 10.1109/eucnc.2019.8802001]
[8]  
Polese M, 2018, IEEE INT WORK SIGN P, P591
[9]   3-D Millimeter-Wave Statistical Channel Model for 5G Wireless System Design [J].
Samimi, Mathew K. ;
Rappaport, Theodore S. .
IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2016, 64 (07) :2207-2225
[10]   5G: A Tutorial Overview of Standards, Trials, Challenges, Deployment, and Practice [J].
Shafi, Mansoor ;
Molisch, Andreas F. ;
Smith, Peter J. ;
Haustein, Thomas ;
Zhu, Peiying ;
De Silva, Prasan ;
Tufvesson, Fredrik ;
Benjebbour, Anass ;
Wunder, Gerhard .
IEEE JOURNAL ON SELECTED AREAS IN COMMUNICATIONS, 2017, 35 (06) :1201-1221