On the Ungerboeck and Forney Observation Models for Spatial Combining And Their Application to 5G Millimeter-Wave Bands
Equivalent discrete-time models for a variety of spatial combining techniques operating in a frequency-selective multipath fading channel are derived. The equivalent discrete-time models are used to perform computer simulations of the post-equalizer bit error rate over a frequency-selective multipat...
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doaj-fcf106564a5145339f474399d02b1ad52021-03-30T15:06:51ZengIEEEIEEE Access2169-35362021-01-019222142223110.1109/ACCESS.2021.30546879335958On the Ungerboeck and Forney Observation Models for Spatial Combining And Their Application to 5G Millimeter-Wave BandsFarah Arabian0https://orcid.org/0000-0001-6763-8605Gregory P. Nordin1Michael Rice2https://orcid.org/0000-0001-5150-4792Department of Electrical and Computer Engineering, Brigham Young University, Provo, UT, USADepartment of Electrical and Computer Engineering, Brigham Young University, Provo, UT, USADepartment of Electrical and Computer Engineering, Brigham Young University, Provo, UT, USAEquivalent discrete-time models for a variety of spatial combining techniques operating in a frequency-selective multipath fading channel are derived. The equivalent discrete-time models are used to perform computer simulations of the post-equalizer bit error rate over a frequency-selective multipath channel whose derivation preserved polarization state information. Two sets of computer simulations were performed. In the first set, the performance of co-located cross-polarized antenna elements was investigated. The results showed that maximum likelihood combining maximizes polarization diversity, but that maximum ratio combining and selection combining were very competitive in the case where the cross-polarized antennas produce one strong channel and a relatively weak channel. Elliptical combining, using a 90° hybrid coupler, produced the worst results. The second set of simulations used a combination of spatial and cross-polarized antenna elements, for a total of eight antenna elements. The simulation results showed that maximum likelihood combining was best, followed by maximum ratio combining, equal gain combining, and selection combining. Again, elliptical combining was the worst, leading to the conclusion that other combining techniques are preferred in frequency-selective fading environments.https://ieeexplore.ieee.org/document/9335958/Frequency-selective multipath fadingtime-domain equalizationdiversity combiningpolarization diversity5G millimeter-wave band |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Farah Arabian Gregory P. Nordin Michael Rice |
spellingShingle |
Farah Arabian Gregory P. Nordin Michael Rice On the Ungerboeck and Forney Observation Models for Spatial Combining And Their Application to 5G Millimeter-Wave Bands IEEE Access Frequency-selective multipath fading time-domain equalization diversity combining polarization diversity 5G millimeter-wave band |
author_facet |
Farah Arabian Gregory P. Nordin Michael Rice |
author_sort |
Farah Arabian |
title |
On the Ungerboeck and Forney Observation Models for Spatial Combining And Their Application to 5G Millimeter-Wave Bands |
title_short |
On the Ungerboeck and Forney Observation Models for Spatial Combining And Their Application to 5G Millimeter-Wave Bands |
title_full |
On the Ungerboeck and Forney Observation Models for Spatial Combining And Their Application to 5G Millimeter-Wave Bands |
title_fullStr |
On the Ungerboeck and Forney Observation Models for Spatial Combining And Their Application to 5G Millimeter-Wave Bands |
title_full_unstemmed |
On the Ungerboeck and Forney Observation Models for Spatial Combining And Their Application to 5G Millimeter-Wave Bands |
title_sort |
on the ungerboeck and forney observation models for spatial combining and their application to 5g millimeter-wave bands |
publisher |
IEEE |
series |
IEEE Access |
issn |
2169-3536 |
publishDate |
2021-01-01 |
description |
Equivalent discrete-time models for a variety of spatial combining techniques operating in a frequency-selective multipath fading channel are derived. The equivalent discrete-time models are used to perform computer simulations of the post-equalizer bit error rate over a frequency-selective multipath channel whose derivation preserved polarization state information. Two sets of computer simulations were performed. In the first set, the performance of co-located cross-polarized antenna elements was investigated. The results showed that maximum likelihood combining maximizes polarization diversity, but that maximum ratio combining and selection combining were very competitive in the case where the cross-polarized antennas produce one strong channel and a relatively weak channel. Elliptical combining, using a 90° hybrid coupler, produced the worst results. The second set of simulations used a combination of spatial and cross-polarized antenna elements, for a total of eight antenna elements. The simulation results showed that maximum likelihood combining was best, followed by maximum ratio combining, equal gain combining, and selection combining. Again, elliptical combining was the worst, leading to the conclusion that other combining techniques are preferred in frequency-selective fading environments. |
topic |
Frequency-selective multipath fading time-domain equalization diversity combining polarization diversity 5G millimeter-wave band |
url |
https://ieeexplore.ieee.org/document/9335958/ |
work_keys_str_mv |
AT faraharabian ontheungerboeckandforneyobservationmodelsforspatialcombiningandtheirapplicationto5gmillimeterwavebands AT gregorypnordin ontheungerboeckandforneyobservationmodelsforspatialcombiningandtheirapplicationto5gmillimeterwavebands AT michaelrice ontheungerboeckandforneyobservationmodelsforspatialcombiningandtheirapplicationto5gmillimeterwavebands |
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