Characterization of Field of View in Visible Light Communication Systems for Intelligent Transportation Systems

This paper reports a detailed experimental characterization of non Line-of-Sight (LoS) optical performances of a Visible Light Communication (VLC) system using a real traffic light for ultra-low latency, infrastructure-to-vehicle (I2V) communications for intelligent transportation systems (ITS) prot...

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Main Authors: Marco Seminara, Tassadaq Nawaz, Stefano Caputo, Lorenzo Mucchi, Jacopo Catani
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Photonics Journal
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9127774/
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spelling doaj-b7b5cf374ed6440885b18f693ba6e7432021-03-29T18:00:26ZengIEEEIEEE Photonics Journal1943-06552020-01-0112411610.1109/JPHOT.2020.30056209127774Characterization of Field of View in Visible Light Communication Systems for Intelligent Transportation SystemsMarco Seminara0https://orcid.org/0000-0002-2785-9515Tassadaq Nawaz1https://orcid.org/0000-0001-5730-6383Stefano Caputo2Lorenzo Mucchi3https://orcid.org/0000-0001-6389-0221Jacopo Catani4https://orcid.org/0000-0002-2951-7041European Laboratory for NonLinear Spectroscopy (LENS), University of Florence, Sesto Fiorentino, Italy Department of Physics and Astronomy, University of Florence, Firenze, ItalyIstituto Nazionale di Ottica del CNR (CNR-INO), Sesto Fiorentino, Italy Department of Information Engineering, University of Florence, Firenze, Italy Department of Information Engineering, University of Florence, Firenze, Italy This paper reports a detailed experimental characterization of non Line-of-Sight (LoS) optical performances of a Visible Light Communication (VLC) system using a real traffic light for ultra-low latency, infrastructure-to-vehicle (I2V) communications for intelligent transportation systems (ITS) protocols. Despite the implementation of long-sought ITS protocols poses the crucial need to detail how the features of optical stages influence the overall performances of a VLC system in realistic configurations, such characterization has rarely been addressed at present. We carried out an experimental investigation in a realistic configuration where a regular traffic light (TX), enabled for VLC transmission, sends digital information towards a receiving stage (RX), composed by an optical condenser and a dedicated amplified photodiode stage. We performed a detailed measurements campaign of VLC performances encompassing a broad set of optical condensers, and for TX-RX distances in the range 3-50 m, in terms of both effective Field of View (EFOV) and Packet Error Rate (PER). The results show several angle-dependent nontrivial behaviors for different lens sets as a function of position on the measurement grid, highlighting critical aspects for ITS applications as well as identifying most suitable optical configurations depending on the specific application and on the required EFOV. We also provide a theoretical model for both the signal intensity and the EFOV as a function of several parameters, such as distance, RX orientation and focal length of the specific condenser. To our best knowledge, there are no optical and EFOV experimental analyses for VLC systems in ITS applications in literature. Our results could be very relevant in the near future to assess a most suited solution in terms of acceptance angle when designing a VLC system for real applications, where angle-dependent misalignment effects play a non-negligible role, and we argue that they could have more general implications with respect to the pristine I2V case mentioned here.https://ieeexplore.ieee.org/document/9127774/Visible light communicationintelligent transportation systemsoptical systemsinfrastructure to vehiclevehicle to vehiclefield of view
collection DOAJ
language English
format Article
sources DOAJ
author Marco Seminara
Tassadaq Nawaz
Stefano Caputo
Lorenzo Mucchi
Jacopo Catani
spellingShingle Marco Seminara
Tassadaq Nawaz
Stefano Caputo
Lorenzo Mucchi
Jacopo Catani
Characterization of Field of View in Visible Light Communication Systems for Intelligent Transportation Systems
IEEE Photonics Journal
Visible light communication
intelligent transportation systems
optical systems
infrastructure to vehicle
vehicle to vehicle
field of view
author_facet Marco Seminara
Tassadaq Nawaz
Stefano Caputo
Lorenzo Mucchi
Jacopo Catani
author_sort Marco Seminara
title Characterization of Field of View in Visible Light Communication Systems for Intelligent Transportation Systems
title_short Characterization of Field of View in Visible Light Communication Systems for Intelligent Transportation Systems
title_full Characterization of Field of View in Visible Light Communication Systems for Intelligent Transportation Systems
title_fullStr Characterization of Field of View in Visible Light Communication Systems for Intelligent Transportation Systems
title_full_unstemmed Characterization of Field of View in Visible Light Communication Systems for Intelligent Transportation Systems
title_sort characterization of field of view in visible light communication systems for intelligent transportation systems
publisher IEEE
series IEEE Photonics Journal
issn 1943-0655
publishDate 2020-01-01
description This paper reports a detailed experimental characterization of non Line-of-Sight (LoS) optical performances of a Visible Light Communication (VLC) system using a real traffic light for ultra-low latency, infrastructure-to-vehicle (I2V) communications for intelligent transportation systems (ITS) protocols. Despite the implementation of long-sought ITS protocols poses the crucial need to detail how the features of optical stages influence the overall performances of a VLC system in realistic configurations, such characterization has rarely been addressed at present. We carried out an experimental investigation in a realistic configuration where a regular traffic light (TX), enabled for VLC transmission, sends digital information towards a receiving stage (RX), composed by an optical condenser and a dedicated amplified photodiode stage. We performed a detailed measurements campaign of VLC performances encompassing a broad set of optical condensers, and for TX-RX distances in the range 3-50 m, in terms of both effective Field of View (EFOV) and Packet Error Rate (PER). The results show several angle-dependent nontrivial behaviors for different lens sets as a function of position on the measurement grid, highlighting critical aspects for ITS applications as well as identifying most suitable optical configurations depending on the specific application and on the required EFOV. We also provide a theoretical model for both the signal intensity and the EFOV as a function of several parameters, such as distance, RX orientation and focal length of the specific condenser. To our best knowledge, there are no optical and EFOV experimental analyses for VLC systems in ITS applications in literature. Our results could be very relevant in the near future to assess a most suited solution in terms of acceptance angle when designing a VLC system for real applications, where angle-dependent misalignment effects play a non-negligible role, and we argue that they could have more general implications with respect to the pristine I2V case mentioned here.
topic Visible light communication
intelligent transportation systems
optical systems
infrastructure to vehicle
vehicle to vehicle
field of view
url https://ieeexplore.ieee.org/document/9127774/
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