Indoor Corridor Wideband Radio Propagation Measurements and Channel Models for 5G Millimeter Wave Wireless Communications at 19 GHz, 28 GHz, and 38 GHz Bands

被引:29
|
作者
Al-samman, Ahmed M. [1 ]
Abd Rahman, Tharek [1 ]
Azmi, Marwan Hadri [1 ]
机构
[1] Univ Teknol Malaysia, Fac Elect Engn, Dept Wireless Commun Ctr, Johor Baharu 81310, Malaysia
关键词
TIME DISPERSION PARAMETERS; ENVIRONMENT; ALGORITHM; SYSTEMS;
D O I
10.1155/2018/6369517
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
This paper presents millimeter wave (mmWave) measurements in an indoor environment. The high demands for the future applications in the 5G system require more capacity. In the microwave band below 6 GHz, most of the available bands are occupied; hence, the microwave band above 6 GHz and mmWave band can be used for the 5G system to cover the bandwidth required for all 5G applications. In this paper, the propagation characteristics at three different bands above 6 GHz (19, 28, and 38 GHz) are investigated in an indoor corridor environment for line of sight (LOS) and non-LOS (NLOS) scenarios. Five different path loss models are studied for this environment, namely, close-in (CI) free space path loss, floating-intercept (FI), frequency attenuation (FA) path loss, alpha-beta-gamma (ABG), and close-in free space reference distance with frequency weighting (CIF) models. Important statistical properties, such as power delay profile (PDP), root mean square (RMS) delay spread, and azimuth angle spread, are obtained and compared for different bands. The results for the path loss model found that the path loss exponent (PLE) and line slope values for all models are less than the free space path loss exponent of 2. The RMS delay spread for all bands is low for the LOS scenario, and only the directed path is contributed in some spatial locations. For the NLOS scenario, the angle of arrival (AOA) is extensively investigated, and the results indicated that the channel propagation for 5G using high directional antenna should be used in the beamforming technique to receive the signal and collect all multipath components from different angles in a particular mobile location.
引用
收藏
页数:12
相关论文
共 50 条
  • [1] Millimeter-wave propagation measurements and models at 28 GHz and 38 GHz in a dining room for 5G wireless networks
    Al-Samman, Ahmed Mohammed
    Abd Rahman, Tharek
    Azmi, Marwan Hadri
    Al-Gailani, Samir A.
    [J]. MEASUREMENT, 2018, 130 : 71 - 81
  • [2] Radio Propagation Path Loss Models for 5G Cellular Networks in the 28 GHz and 38 GHz Millimeter-Wave Bands
    Sulyman, Ahmed Iyanda
    Nassar, AlMuthanna T.
    Samimi, Mathew K.
    MacCartney, George R., Jr.
    Rappaport, Theodore S.
    Alsanie, Abdulhameed
    [J]. IEEE COMMUNICATIONS MAGAZINE, 2014, 52 (09) : 78 - 86
  • [3] Indoor Office Wideband Millimeter-Wave Propagation Measurements and Channel Models at 28 and 73 GHz for Ultra-Dense 5G Wireless Networks
    MacCartney, George R.
    Rappaport, Theodore S.
    Sun, Shu
    Deng, Sijia
    [J]. IEEE ACCESS, 2015, 3 : 2388 - 2424
  • [4] Radio Propagation Path Loss Models for 5G Cellular Networks in the 28 GHz and 38 GHz Millimeter-Wave Bands (vol 52, pg 78, 2014)
    Sulyman, Ahmed Iyanda
    Nassar, AlMuthanna T.
    Samimi, Mathew K.
    MacCartney, George R., Jr.
    Rappaport, Theodore S.
    Alsanie, Abdulhameed
    [J]. IEEE COMMUNICATIONS MAGAZINE, 2015, 53 (01) : 303 - 303
  • [5] Measurements and Modelling of Millimeter-Wave Channel at 28 GHz in the Indoor Complex Environment for 5G Radio Systems
    Li, Shuangde
    Liu, Yuanjian
    Chen, Zhipeng
    Sun, Xiangchen
    Lin, Leke
    [J]. 2017 9TH INTERNATIONAL CONFERENCE ON WIRELESS COMMUNICATIONS AND SIGNAL PROCESSING (WCSP), 2017,
  • [6] 5G Channel Propagation at 28 GHz in Indoor Environment
    Al-Samman, Ahmed M.
    Rahman, Tharek Abdul
    Al-Hadhrami, Tawfik
    [J]. EMERGING TRENDS IN INTELLIGENT COMPUTING AND INFORMATICS: DATA SCIENCE, INTELLIGENT INFORMATION SYSTEMS AND SMART COMPUTING, 2020, 1073 : 634 - 642
  • [7] 28 GHz and 73 GHz Millimeter-Wave Indoor Propagation Measurements and Path Loss Models
    Deng, Sijia
    Samimi, Mathew K.
    Rappaport, Theodore S.
    [J]. 2015 IEEE INTERNATIONAL CONFERENCE ON COMMUNICATION WORKSHOP (ICCW), 2015, : 1244 - 1250
  • [8] Radio Propagation Measurements in the Indoor Stairwell Environment at 3.5 and 28 GHz for 5G Wireless Networks
    Al-Saman, Ahmed
    Mohamed, Marshed
    Cheffena, Michael
    [J]. INTERNATIONAL JOURNAL OF ANTENNAS AND PROPAGATION, 2020, 2020 (2020)
  • [9] Indoor Corridor Radio Propagation Characteristics at 60 GHz for Wireless Communications
    Murugesan, D.
    Rao, T. Rama
    [J]. 2012 THIRD INTERNATIONAL CONFERENCE ON COMPUTING COMMUNICATION & NETWORKING TECHNOLOGIES (ICCCNT), 2012,
  • [10] Indoor wideband directional millimeter wave channel measurements and analysis at 26 GHz, 32 GHz, and 39 GHz
    Khalily, Mohsen
    Taheri, Sohail
    Payami, Sohail
    Ghoraishi, Mir
    Tafazolli, Rahim
    [J]. TRANSACTIONS ON EMERGING TELECOMMUNICATIONS TECHNOLOGIES, 2018, 29 (10):