Spherical Statistics and Spatial Correlation for Multielement Antenna Systems

<p/> <p>The well-known assumption of horizontal plane wave propagation is investigated and evidence suggests that elevation plays a crucial role in defining the spatial correlation between signals on adjacent antenna array elements. To augment previously published studies, an explicit re...

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Main Authors: Mammasis Konstantinos, Stewart RobertW
Format: Article
Language:English
Published: SpringerOpen 2010-01-01
Series:EURASIP Journal on Wireless Communications and Networking
Online Access:http://jwcn.eurasipjournals.com/content/2010/307265
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spelling doaj-a2471a549f964f3f839431aa65f3cd152020-11-25T00:59:49ZengSpringerOpenEURASIP Journal on Wireless Communications and Networking1687-14721687-14992010-01-0120101307265Spherical Statistics and Spatial Correlation for Multielement Antenna SystemsMammasis KonstantinosStewart RobertW<p/> <p>The well-known assumption of horizontal plane wave propagation is investigated and evidence suggests that elevation plays a crucial role in defining the spatial correlation between signals on adjacent antenna array elements. To augment previously published studies, an explicit relationship between the distribution of scatterers in three-dimensional (3D) space and the spatial correlation is formulated. A novel approach is taken for modeling of the distribution of scatterers in space. More specifically, the distribution of scatterers is modeled by the 3D von Mises-Fisher (vMF) distribution. In addition, a closed-form expression is derived for the harmonic coefficients of the vMF density. The main derivation expresses the spherical harmonic coefficients associated with an arbitrary mean direction on the sphere. Further, a closed-form expression for the spatial correlation function (SCF) is derived, based on the spherical harmonic expansion (SHE) of plane waves as well as the harmonic coefficients of the expanded vMF density. A novel approach is proposed for including the effect of directional antenna responses in the SCF. Finally, the SCF is evaluated under the existence of multiple scatterer clusters in the channel. </p>http://jwcn.eurasipjournals.com/content/2010/307265
collection DOAJ
language English
format Article
sources DOAJ
author Mammasis Konstantinos
Stewart RobertW
spellingShingle Mammasis Konstantinos
Stewart RobertW
Spherical Statistics and Spatial Correlation for Multielement Antenna Systems
EURASIP Journal on Wireless Communications and Networking
author_facet Mammasis Konstantinos
Stewart RobertW
author_sort Mammasis Konstantinos
title Spherical Statistics and Spatial Correlation for Multielement Antenna Systems
title_short Spherical Statistics and Spatial Correlation for Multielement Antenna Systems
title_full Spherical Statistics and Spatial Correlation for Multielement Antenna Systems
title_fullStr Spherical Statistics and Spatial Correlation for Multielement Antenna Systems
title_full_unstemmed Spherical Statistics and Spatial Correlation for Multielement Antenna Systems
title_sort spherical statistics and spatial correlation for multielement antenna systems
publisher SpringerOpen
series EURASIP Journal on Wireless Communications and Networking
issn 1687-1472
1687-1499
publishDate 2010-01-01
description <p/> <p>The well-known assumption of horizontal plane wave propagation is investigated and evidence suggests that elevation plays a crucial role in defining the spatial correlation between signals on adjacent antenna array elements. To augment previously published studies, an explicit relationship between the distribution of scatterers in three-dimensional (3D) space and the spatial correlation is formulated. A novel approach is taken for modeling of the distribution of scatterers in space. More specifically, the distribution of scatterers is modeled by the 3D von Mises-Fisher (vMF) distribution. In addition, a closed-form expression is derived for the harmonic coefficients of the vMF density. The main derivation expresses the spherical harmonic coefficients associated with an arbitrary mean direction on the sphere. Further, a closed-form expression for the spatial correlation function (SCF) is derived, based on the spherical harmonic expansion (SHE) of plane waves as well as the harmonic coefficients of the expanded vMF density. A novel approach is proposed for including the effect of directional antenna responses in the SCF. Finally, the SCF is evaluated under the existence of multiple scatterer clusters in the channel. </p>
url http://jwcn.eurasipjournals.com/content/2010/307265
work_keys_str_mv AT mammasiskonstantinos sphericalstatisticsandspatialcorrelationformultielementantennasystems
AT stewartrobertw sphericalstatisticsandspatialcorrelationformultielementantennasystems
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