Mixed Waveform Numerology for Performance Enhancement in High Mobility Wireless Networks

被引:0
作者
Stoynov, Viktor [1 ]
Valkova-Jarvis, Zlatka [1 ]
Mihaylova, Dimitriya [1 ]
Iliev, Georgi [1 ]
Poulkov, Vladimir K. [1 ]
Mihovska, Albena [1 ]
机构
[1] Tech Univ Sofia, Fac Telecommun, Sofia, Bulgaria
来源
2019 22ND INTERNATIONAL SYMPOSIUM ON WIRELESS PERSONAL MULTIMEDIA COMMUNICATIONS (WPMC) | 2019年
关键词
physical layer; flexible numerology; OFDM; high mobility; wireless networks;
D O I
10.1109/wpmc48795.2019.9096085
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
In order to handle the ever-increasing requirements of mobile users, the design and operation of the physical layer of next-generation cellular networks demand high flexibility and efficiency. In addition, performance enhancement necessitates the support of a wide range of frequencies, intelligent dynamic use of the available spectrum resources, and the implementation of a number of types of waveform. Orthogonal Frequency Division Multiplexing (OFDM), and in particular its ability of Cyclic Prefix (CP) adaptation, appears unable to fulfil the requirements of the different types of services currently utilised by users. In this context, the parameters characterising the different types of waveforms, such as the number of subcarriers, subcarrier spacing (SCS) and slot duration, can be flexibly adapted to the current communication scenario, resulting in a reduction in latency and a significant improvement in user throughput. In this paper, the specific design peculiarities of mixed waveform numerology in relation to high-mobility communication environments characterized by Vehicle-to-Infrastructure (V2I) downlink communications are considered. The results demonstrate that the enhancement of network performance according to the specific channel conditions and level of interference, together with the trade-off between spectral efficiency and computational complexity, are the most important challenges in the design and practical implementation of the mixed waveform numerology concept.
引用
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页数:4
相关论文
共 8 条
[1]   Flexible Radio Access Beyond 5G: A Future Projection on Waveform, Numerology, and Frame Design Principles [J].
Ankarali, Zekeriyya Esat ;
Pekoz, Berker ;
Arslan, Huseyin .
IEEE ACCESS, 2017, 5 :18295-18309
[2]  
[Anonymous], 2017, 3rd Generation Partnership Project (3GPP), Technical Specification (TS) 38.212
[3]  
Kihero A., 2019, ARXIV190512748
[4]   Vehicular Communications: A Physical Layer Perspective [J].
Liang, Le ;
Peng, Haixia ;
Li, Geoffrey Ye ;
Shen, Xuemin .
IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2017, 66 (12) :10647-10659
[5]   An Investigation of Flexible Waveform Numerologies for 5G V2I Cellular Networks from a Physical Layer Perspective [J].
Stoynov, Viktor ;
Mihaylova, Dimitriya ;
Valkova-Jarvis, Zlatka ;
Iliev, Georgi ;
Poulkov, Vladimir .
2019 IEEE INTERNATIONAL CONFERENCE ON MICROWAVES, ANTENNAS, COMMUNICATIONS AND ELECTRONIC SYSTEMS (COMCAS), 2019,
[6]   Performance of emerging multi-carrier waveforms for 5G asynchronous communications [J].
Van Eeckhaute, Mathieu ;
Bourdoux, Andre ;
De Doncker, Philippe ;
Horlin, Francois .
EURASIP JOURNAL ON WIRELESS COMMUNICATIONS AND NETWORKING, 2017,
[7]  
Yazar A., 2019, ARXIV180502842
[8]   A Flexibility Metric and Optimization Methods for Mixed Numerologies in 5G and Beyond [J].
Yazar, Ahmet ;
Arslan, Huseyin .
IEEE ACCESS, 2018, 6 :3755-3764