DocumentCode
1266978
Title
A Geometric Polarization Rotation Model for the 3-D Spatial Channel Model
Author
Jaeckel, Stephan ; Börner, Kai ; Thiele, Lars ; Jungnickel, Volker
Author_Institution
Fraunhofer Inst. for Telecommun., Heinrich Hertz Inst. (HHI), Berlin, Germany
Volume
60
Issue
12
fYear
2012
Firstpage
5966
Lastpage
5977
Abstract
It is common to use channel models such as the 3GPP spatial channel model (SCM), the WINNER model or ray tracing to evaluate multiple-antenna multiple-user techniques in wireless communications. Cross-polarized antennas can enhance the channel rank and thus the throughput of such systems especially in case of a line-of-sight (LOS) connection. This requires an exact model of the polarization characteristics. To increase the accuracy of the existing channel models, we propose a new method that predicts the polarization state of a microwave link based on findings in the field of optics. We verified the method by cross-polarized multiple-input-multiple-output (MIMO) measurements at 2.6 GHz with 16 transmitters and ten receivers in an urban macrocell environment under strong LOS conditions in downtown Berlin, Germany. Comparisons of simulation and measurement results show that the coefficients of the polarized LOS channel can be predicted very well by the new method. Measured capacities at 10-dB signal-to-noise ratio (SNR) were in between 14.2 and 19.1 b/s/Hz-values that can be predicted by the channel model with more than 90% accuracy. This increase in modeling accuracy is an important feature for many applications such as heterogeneous networks, space-to-ground satellite communications, and cooperative communications.
Keywords
3G mobile communication; MIMO communication; UHF antennas; microwave antenna arrays; microwave links; mobile antennas; ray tracing; wireless channels; 3D spatial channel model; 3GPP spatial channel model; LOS connection; MIMO measurements; SCM; WINNER model; channel rank enhancement; cooperative communications; cross-polarized antennas; cross-polarized multiple-input-multiple-output measurements; frequency 2.6 GHz; geometric polarization rotation model; heterogeneous networks; line-of-sight connection; microwave link; multiple-antenna multiple-user techniques; polarization state prediction; polarized LOS channel; ray tracing; receivers; signal-to-noise ratio; space-to-ground satellite communications; transmitters; urban macrocell environment; wireless communications; Antenna measurements; MIMO; Receiving antennas; Transmitters; Vectors; Capacity; MIMO systems; cross-polarization ratio (XPR); dual polarization; measurement; modeling; multiple-input–multiple-output (MIMO); polarization; radio propagation; spatial channel model (SCM);
fLanguage
English
Journal_Title
Antennas and Propagation, IEEE Transactions on
Publisher
ieee
ISSN
0018-926X
Type
jour
DOI
10.1109/TAP.2012.2214017
Filename
6272327
Link To Document