Improved Model for Estimation of Spatial Averaging Path Length

In mobile communication systems, the transmitted RF signal is subject to mutually independent deterministic path loss and stochastic multipath and shadow fading. As at each spatial location mostly the composite signal samples are measured, their components are distinguished by averaging out the mult...

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Main Authors: Pamela Njemčević, Adriana Lipovac, Vlatko Lipovac
Format: Article
Language:English
Published: Hindawi-Wiley 2018-01-01
Series:Wireless Communications and Mobile Computing
Online Access:http://dx.doi.org/10.1155/2018/4704218
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spelling doaj-b3b0470ad2cb49e5951648a7bfd1b94b2020-11-24T21:35:58ZengHindawi-WileyWireless Communications and Mobile Computing1530-86691530-86772018-01-01201810.1155/2018/47042184704218Improved Model for Estimation of Spatial Averaging Path LengthPamela Njemčević0Adriana Lipovac1Vlatko Lipovac2Department of Telecommunications, Faculty of Electrical Engineering, University of Sarajevo, Sarajevo, Bosnia and HerzegovinaDepartment of Electrical Engineering and Computing, University of Dubrovnik, Dubrovnik, CroatiaDepartment of Electrical Engineering and Computing, University of Dubrovnik, Dubrovnik, CroatiaIn mobile communication systems, the transmitted RF signal is subject to mutually independent deterministic path loss and stochastic multipath and shadow fading. As at each spatial location mostly the composite signal samples are measured, their components are distinguished by averaging out the multipath-caused signal level variations, while preserving just the ones due to shadowing. The prerequisite for this is the appropriateness of the local area averaging path length that enables obtaining the local mean (composed of mean path loss and shadow fading) and the multipath fading as difference between the composite signal sample and the local mean. However, the so far reported analytical approaches to estimation of the averaging path length are based on considering either the multipath or just the shadow fading, with applicability limited to only specific topologies and frequencies. Therefore, in this paper, the most widely used Lee analytical method is generalized and improved by considering multipath and shadowing concurrently, so providing the general closed-form elementary-function based estimation of the optimal averaging path length as a function of common multipath and shadow fading parameters characterizing particular propagation environment. The model enables recommendations for the optimal averaging length for all propagation conditions facing the mobile receiver.http://dx.doi.org/10.1155/2018/4704218
collection DOAJ
language English
format Article
sources DOAJ
author Pamela Njemčević
Adriana Lipovac
Vlatko Lipovac
spellingShingle Pamela Njemčević
Adriana Lipovac
Vlatko Lipovac
Improved Model for Estimation of Spatial Averaging Path Length
Wireless Communications and Mobile Computing
author_facet Pamela Njemčević
Adriana Lipovac
Vlatko Lipovac
author_sort Pamela Njemčević
title Improved Model for Estimation of Spatial Averaging Path Length
title_short Improved Model for Estimation of Spatial Averaging Path Length
title_full Improved Model for Estimation of Spatial Averaging Path Length
title_fullStr Improved Model for Estimation of Spatial Averaging Path Length
title_full_unstemmed Improved Model for Estimation of Spatial Averaging Path Length
title_sort improved model for estimation of spatial averaging path length
publisher Hindawi-Wiley
series Wireless Communications and Mobile Computing
issn 1530-8669
1530-8677
publishDate 2018-01-01
description In mobile communication systems, the transmitted RF signal is subject to mutually independent deterministic path loss and stochastic multipath and shadow fading. As at each spatial location mostly the composite signal samples are measured, their components are distinguished by averaging out the multipath-caused signal level variations, while preserving just the ones due to shadowing. The prerequisite for this is the appropriateness of the local area averaging path length that enables obtaining the local mean (composed of mean path loss and shadow fading) and the multipath fading as difference between the composite signal sample and the local mean. However, the so far reported analytical approaches to estimation of the averaging path length are based on considering either the multipath or just the shadow fading, with applicability limited to only specific topologies and frequencies. Therefore, in this paper, the most widely used Lee analytical method is generalized and improved by considering multipath and shadowing concurrently, so providing the general closed-form elementary-function based estimation of the optimal averaging path length as a function of common multipath and shadow fading parameters characterizing particular propagation environment. The model enables recommendations for the optimal averaging length for all propagation conditions facing the mobile receiver.
url http://dx.doi.org/10.1155/2018/4704218
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AT adrianalipovac improvedmodelforestimationofspatialaveragingpathlength
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