A STATISTICAL ANALYSIS ON THE SYSTEM PERFORMANCE OF A BLUETOOTH LOW ENERGY INDOOR POSITIONING SYSTEM IN A 3D ENVIRONMENT

Since GPS tends to fail for indoor positioning purposes, alternative methods like indoor positioning systems (IPS) based on Bluetooth low energy (BLE) are developing rapidly. Generally, IPS are deployed in environments covered with obstacles such as furniture, walls, people and electronics influen...

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Main Authors: G. G. Haagmans, S. Verhagen, R. L. Voûte, E. Verbree
Format: Article
Language:English
Published: Copernicus Publications 2017-09-01
Series:ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences
Online Access:https://www.isprs-ann-photogramm-remote-sens-spatial-inf-sci.net/IV-2-W4/319/2017/isprs-annals-IV-2-W4-319-2017.pdf
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spelling doaj-749b2be31f6440fda2f84051b6a4f2712020-11-25T00:39:55ZengCopernicus PublicationsISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences2194-90422194-90502017-09-01IV-2-W431932610.5194/isprs-annals-IV-2-W4-319-2017A STATISTICAL ANALYSIS ON THE SYSTEM PERFORMANCE OF A BLUETOOTH LOW ENERGY INDOOR POSITIONING SYSTEM IN A 3D ENVIRONMENTG. G. Haagmans0S. Verhagen1R. L. Voûte2R. L. Voûte3E. Verbree4Geoscience and Remote Sensing, Civil Engineering and Geosciences Faculty, TU Delft, the NetherlandsGeoscience and Remote Sensing, Civil Engineering and Geosciences Faculty, TU Delft, the NetherlandsCGI Nederland BV, George Hintzenweg 89, 3068 AX Rotterdam, the NetherlandsDepartment Urbanism, Faculty of Architecture and the Built Environment, TU Delft, the NetherlandsOTB – Research for the Built Environment, Faculty of Architecture and the Built Environment, TU Delft, the NetherlandsSince GPS tends to fail for indoor positioning purposes, alternative methods like indoor positioning systems (IPS) based on Bluetooth low energy (BLE) are developing rapidly. Generally, IPS are deployed in environments covered with obstacles such as furniture, walls, people and electronics influencing the signal propagation. The major factor influencing the system performance and to acquire optimal positioning results is the geometry of the beacons. The geometry of the beacons is limited to the available infrastructure that can be deployed (number of beacons, basestations and tags), which leads to the following challenge: Given a limited number of beacons, where should they be placed in a specified indoor environment, such that the geometry contributes to optimal positioning results? This paper aims to propose a statistical model that is able to select the optimal configuration that satisfies the user requirements in terms of precision. The model requires the definition of a chosen 3D space (in our case 7 × 10 × 6 meter), number of beacons, possible user tag locations and a performance threshold (e.g. required precision). For any given set of beacon and receiver locations, the precision, internal- and external reliability can be determined on forehand. As validation, the modeled precision has been compared with observed precision results. The measurements have been performed with an IPS of BlooLoc at a chosen set of user tag locations for a given geometric configuration. Eventually, the model is able to select the optimal geometric configuration out of millions of possible configurations based on a performance threshold (e.g. required precision).https://www.isprs-ann-photogramm-remote-sens-spatial-inf-sci.net/IV-2-W4/319/2017/isprs-annals-IV-2-W4-319-2017.pdf
collection DOAJ
language English
format Article
sources DOAJ
author G. G. Haagmans
S. Verhagen
R. L. Voûte
R. L. Voûte
E. Verbree
spellingShingle G. G. Haagmans
S. Verhagen
R. L. Voûte
R. L. Voûte
E. Verbree
A STATISTICAL ANALYSIS ON THE SYSTEM PERFORMANCE OF A BLUETOOTH LOW ENERGY INDOOR POSITIONING SYSTEM IN A 3D ENVIRONMENT
ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences
author_facet G. G. Haagmans
S. Verhagen
R. L. Voûte
R. L. Voûte
E. Verbree
author_sort G. G. Haagmans
title A STATISTICAL ANALYSIS ON THE SYSTEM PERFORMANCE OF A BLUETOOTH LOW ENERGY INDOOR POSITIONING SYSTEM IN A 3D ENVIRONMENT
title_short A STATISTICAL ANALYSIS ON THE SYSTEM PERFORMANCE OF A BLUETOOTH LOW ENERGY INDOOR POSITIONING SYSTEM IN A 3D ENVIRONMENT
title_full A STATISTICAL ANALYSIS ON THE SYSTEM PERFORMANCE OF A BLUETOOTH LOW ENERGY INDOOR POSITIONING SYSTEM IN A 3D ENVIRONMENT
title_fullStr A STATISTICAL ANALYSIS ON THE SYSTEM PERFORMANCE OF A BLUETOOTH LOW ENERGY INDOOR POSITIONING SYSTEM IN A 3D ENVIRONMENT
title_full_unstemmed A STATISTICAL ANALYSIS ON THE SYSTEM PERFORMANCE OF A BLUETOOTH LOW ENERGY INDOOR POSITIONING SYSTEM IN A 3D ENVIRONMENT
title_sort statistical analysis on the system performance of a bluetooth low energy indoor positioning system in a 3d environment
publisher Copernicus Publications
series ISPRS Annals of the Photogrammetry, Remote Sensing and Spatial Information Sciences
issn 2194-9042
2194-9050
publishDate 2017-09-01
description Since GPS tends to fail for indoor positioning purposes, alternative methods like indoor positioning systems (IPS) based on Bluetooth low energy (BLE) are developing rapidly. Generally, IPS are deployed in environments covered with obstacles such as furniture, walls, people and electronics influencing the signal propagation. The major factor influencing the system performance and to acquire optimal positioning results is the geometry of the beacons. The geometry of the beacons is limited to the available infrastructure that can be deployed (number of beacons, basestations and tags), which leads to the following challenge: Given a limited number of beacons, where should they be placed in a specified indoor environment, such that the geometry contributes to optimal positioning results? This paper aims to propose a statistical model that is able to select the optimal configuration that satisfies the user requirements in terms of precision. The model requires the definition of a chosen 3D space (in our case 7 × 10 × 6 meter), number of beacons, possible user tag locations and a performance threshold (e.g. required precision). For any given set of beacon and receiver locations, the precision, internal- and external reliability can be determined on forehand. As validation, the modeled precision has been compared with observed precision results. The measurements have been performed with an IPS of BlooLoc at a chosen set of user tag locations for a given geometric configuration. Eventually, the model is able to select the optimal geometric configuration out of millions of possible configurations based on a performance threshold (e.g. required precision).
url https://www.isprs-ann-photogramm-remote-sens-spatial-inf-sci.net/IV-2-W4/319/2017/isprs-annals-IV-2-W4-319-2017.pdf
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