Mobility Model-Based Non-Stationary Mobile-to-Mobile Channel Modeling

被引:69
|
作者
He, Ruisi [1 ]
Ai, Bo [1 ]
Stuber, Gordon L. [2 ]
Zhong, Zhangdui [1 ]
机构
[1] Beijing Jiaotong Univ, State Key Lab Rail Traff Control & Safety, Beijing 100044, Peoples R China
[2] Georgia Inst Technol, Sch Elect & Comp Engn, Atlanta, GA 30332 USA
基金
中国国家自然科学基金; 北京市自然科学基金;
关键词
Channel modeling; geometry-based channel modeling; MIMO; mobile-to-mobile communications; Gauss-Markov mobility model; non-stationary channels; STOCHASTIC-MODELS; MIMO CHANNELS; SIMULATION;
D O I
10.1109/TWC.2018.2824804
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Non-stationary mobile-to-mobile (M2M) channel modeling has gained strong momentum as it is vital for developing M2M communications technology. Traditional geometry-based channel models (GSCMs) for M2M communications usually assume fixed velocity and moving direction, which differs from the realistic M2M scenarios and also makes it difficult to incorporate non-stationarity of channel into the regular-shaped GSCMs. In this paper, a mobility model-based method is proposed to incorporate non-stationarity into M2M channel modeling by introducing dynamic velocities and trajectories. A revised Gauss-Markov mobility model is first presented together with the cluster-based two-ring M2M reference model. The mobility model uses tuning parameters to adjust the degree of mobility randomness and covers different M2M mobility trajectories. Then, a closed-form time-variant time-frequency correlation function and the Doppler power spectrum are derived from the model. Based on the numerical analysis, it is found that for a regular-shaped GSCM with a fixed M2M scattering environment, the motion does not introduce non-stationarity, however, the dynamic motion (i.e., the changes of velocity and moving direction) leads to non-stationarity, which is reflected by the time-variant time correlation function and Doppler spectrum. Different propagation modes, cluster number, and intra-cluster non-isotropic scattering also have major impacts on channel non-stationarity. Moreover, the randomness of the mobility model is found to significantly increase the degree of channel non-stationarity. These conclusions are useful for M2M non-stationary channel simulation and communication system evaluation.
引用
收藏
页码:4388 / 4400
页数:13
相关论文
共 50 条
  • [1] Non-Stationary Mobile-to-Mobile Channel Modeling Using the Gauss-Markov Mobility Model
    He, Ruisi
    Ai, Bo
    Stuber, Gordon L.
    Zhong, Zhangdui
    2017 9TH INTERNATIONAL CONFERENCE ON WIRELESS COMMUNICATIONS AND SIGNAL PROCESSING (WCSP), 2017,
  • [2] A Non-Stationary Mobile-to-Mobile Channel Model Allowing for Velocity and Trajectory Variations of the Mobile Stations
    Dahech, Wiem
    Patzold, Matthias
    Gutierrez, Carlos A.
    Youssef, Neji
    IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS, 2017, 16 (03) : 1987 - 2000
  • [3] A Non-Stationary Mobile-to-Mobile Multipath Fading Channel Model Taking Account of Velocity Variations of the Mobile Stations
    Dahech, Wiem
    Patzold, Matthias
    Youssef, Neji
    2015 9TH EUROPEAN CONFERENCE ON ANTENNAS AND PROPAGATION (EUCAP), 2015,
  • [4] A non-isotropic model for mobile-to-mobile fading channel simulations
    Zheng, Y. Rosa
    MILCOM 2006, VOLS 1-7, 2006, : 87 - 93
  • [5] A Non-WSSUS Mobile-to-Mobile Channel Model Assuming Velocity Variations of the Mobile Stations
    Gutierrez, Carlos A.
    Patzold, Matthias
    Dahech, Wiem
    Youssef, Neji
    2017 IEEE WIRELESS COMMUNICATIONS AND NETWORKING CONFERENCE (WCNC), 2017,
  • [6] A statistical mobile-to-mobile Rician fading channel model
    Wang, LC
    Cheng, YH
    VTC2005-SPRING: 2005 IEEE 61ST VEHICULAR TECHNOLOGY CONFERENCE, VOLS 1-5, PROCEEDINGS, 2005, : 63 - 67
  • [7] A Simplified Geometric Channel Model for Mobile-to-Mobile Communications
    Baltzis, Konstantinos B.
    RADIOENGINEERING, 2011, 20 (04) : 961 - 967
  • [8] A Reference Model for MIMO Mobile-to-Mobile Fading Channel
    Chen Wei
    He Zhiyi
    Zhang Lili
    2007 INTERNATIONAL CONFERENCE ON WIRELESS COMMUNICATIONS, NETWORKING AND MOBILE COMPUTING, VOLS 1-15, 2007, : 228 - 231
  • [9] Modelling of Non-Stationary Mobile Radio Channels Incorporating the Brownian Mobility Model With Drift
    Borhani, Alireza
    Patzold, Matthias
    WORLD CONGRESS ON ENGINEERING AND COMPUTER SCIENCE, WCECS 2013, VOL II, 2013, Ao, : 695 - 700
  • [10] Geometric Analysis of the Doppler Frequency for General Non-Stationary 3D Mobile-to-Mobile Channels Based on Prolate Spheroidal Coordinates
    Walter, Michael
    Shutin, Dmitriy
    Schmidhammer, Martin
    Matolak, David W.
    Zajic, Alenka
    IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2020, 69 (10) : 10419 - 10434