MIMO Characterization on System Level of 5G Microbase Stations Subject to Randomness in LOS

Wireless systems have become more and more advanced in terms of handling the statistical properties of wireless channels. For example, the 4G long term evolution (LTE) system takes advantage of multiport antennas [multiple-input multiple-output (MIMO) technology] and orthogonal frequency division mu...

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Main Authors: Per-Simon Kildal, Xiaoming Chen, Mattias Gustafsson, Zhengzhao Shen
Format: Article
Language:English
Published: IEEE 2014-01-01
Series:IEEE Access
Online Access:https://ieeexplore.ieee.org/document/6902753/
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spelling doaj-25e6ce7bca994b6d87a4ace9904a797c2021-03-29T19:30:57ZengIEEEIEEE Access2169-35362014-01-0121062107510.1109/ACCESS.2014.23589376902753MIMO Characterization on System Level of 5G Microbase Stations Subject to Randomness in LOSPer-Simon Kildal0Xiaoming Chen1Mattias Gustafsson2Zhengzhao Shen3Department of Signals and Systems, Chalmers University of Technology, Gothenburg, SwedenDepartment of Signals and Systems, Chalmers University of Technology, Gothenburg, Sweden Huawei Technologies Sweden AB, Gothenburg, Sweden Huawei Technologies Sweden AB, Gothenburg, SwedenWireless systems have become more and more advanced in terms of handling the statistical properties of wireless channels. For example, the 4G long term evolution (LTE) system takes advantage of multiport antennas [multiple-input multiple-output (MIMO) technology] and orthogonal frequency division multiplexing (OFDM) to improve the detection probability of single bitstream by diversity in the spatial and frequency domains, respectively. The 4G system also supports transmission of two bitstreams by appropriate signal processing of the MIMO subchannels. The reverberation chamber emulates according to previous works rich isotropic multipath (RIMP) and has proven to be very useful for characterizing smart phones for LTE systems. The measured throughput can be accurately modeled by the simple digital threshold receiver, accounting accurately for both the MIMO and OFDM functions. The throughput is equivalent to the probability of detection (PoD) of the transmitted bitstream. The purpose of this paper is to introduce a systematic approach to include the statistical properties of the user and his or her terminal, when characterizing the performance. The user statistics will have a larger effect in environments with stronger line-of-sight (LOS), because the angle of arrival and the polarization of the LOS contribution vary due to the user's orientation and practices. These variations are stochastic, and therefore, we introduce the term random-LOS to describe this. This paper elaborates on the characterization of an example antenna in both RIMP and random-LOS. The chosen antenna is a wideband microbase transceiver station (BTS) antenna. We show how to characterize the micro-BTS by the PoD of one and two bitstreams in both RIMP and random-LOS, by considering the user randomly located and oriented within the angular coverage sector. We limit the treatment to a wall-mounted BTS antenna, and assume a desired hemispherical coverage. The angular coverages of both one and two bitstreams for the random-LOS case are plotted as MIMO-coverage radiation patterns of the whole four-port digital antenna system. Such characterizations in terms of PoD have never been done before on any practical antenna system. The final results are easy to interpret, and they open up a new world of opportunities for designing and optimizing 5G antennas on system level.https://ieeexplore.ieee.org/document/6902753/
collection DOAJ
language English
format Article
sources DOAJ
author Per-Simon Kildal
Xiaoming Chen
Mattias Gustafsson
Zhengzhao Shen
spellingShingle Per-Simon Kildal
Xiaoming Chen
Mattias Gustafsson
Zhengzhao Shen
MIMO Characterization on System Level of 5G Microbase Stations Subject to Randomness in LOS
IEEE Access
author_facet Per-Simon Kildal
Xiaoming Chen
Mattias Gustafsson
Zhengzhao Shen
author_sort Per-Simon Kildal
title MIMO Characterization on System Level of 5G Microbase Stations Subject to Randomness in LOS
title_short MIMO Characterization on System Level of 5G Microbase Stations Subject to Randomness in LOS
title_full MIMO Characterization on System Level of 5G Microbase Stations Subject to Randomness in LOS
title_fullStr MIMO Characterization on System Level of 5G Microbase Stations Subject to Randomness in LOS
title_full_unstemmed MIMO Characterization on System Level of 5G Microbase Stations Subject to Randomness in LOS
title_sort mimo characterization on system level of 5g microbase stations subject to randomness in los
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2014-01-01
description Wireless systems have become more and more advanced in terms of handling the statistical properties of wireless channels. For example, the 4G long term evolution (LTE) system takes advantage of multiport antennas [multiple-input multiple-output (MIMO) technology] and orthogonal frequency division multiplexing (OFDM) to improve the detection probability of single bitstream by diversity in the spatial and frequency domains, respectively. The 4G system also supports transmission of two bitstreams by appropriate signal processing of the MIMO subchannels. The reverberation chamber emulates according to previous works rich isotropic multipath (RIMP) and has proven to be very useful for characterizing smart phones for LTE systems. The measured throughput can be accurately modeled by the simple digital threshold receiver, accounting accurately for both the MIMO and OFDM functions. The throughput is equivalent to the probability of detection (PoD) of the transmitted bitstream. The purpose of this paper is to introduce a systematic approach to include the statistical properties of the user and his or her terminal, when characterizing the performance. The user statistics will have a larger effect in environments with stronger line-of-sight (LOS), because the angle of arrival and the polarization of the LOS contribution vary due to the user's orientation and practices. These variations are stochastic, and therefore, we introduce the term random-LOS to describe this. This paper elaborates on the characterization of an example antenna in both RIMP and random-LOS. The chosen antenna is a wideband microbase transceiver station (BTS) antenna. We show how to characterize the micro-BTS by the PoD of one and two bitstreams in both RIMP and random-LOS, by considering the user randomly located and oriented within the angular coverage sector. We limit the treatment to a wall-mounted BTS antenna, and assume a desired hemispherical coverage. The angular coverages of both one and two bitstreams for the random-LOS case are plotted as MIMO-coverage radiation patterns of the whole four-port digital antenna system. Such characterizations in terms of PoD have never been done before on any practical antenna system. The final results are easy to interpret, and they open up a new world of opportunities for designing and optimizing 5G antennas on system level.
url https://ieeexplore.ieee.org/document/6902753/
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