A Novel and Adaptive Angle Diversity-Based Receiver for 6G Underground Mining VLC Systems.

6G communication systems Angle Diversity Receivers (ADRs) Received Signal Strength Ratio (RSSR) Underground Mining Visible Light Communication (UM-VLC) VLC systems adaptive orientation receiver

Journal

Entropy (Basel, Switzerland)
ISSN: 1099-4300
Titre abrégé: Entropy (Basel)
Pays: Switzerland
ID NLM: 101243874

Informations de publication

Date de publication:
22 Oct 2022
Historique:
received: 12 09 2022
revised: 28 09 2022
accepted: 19 10 2022
entrez: 11 11 2022
pubmed: 12 11 2022
medline: 12 11 2022
Statut: epublish

Résumé

Visible light communication (VLC) is considered an enabling technology for future 6G wireless systems. Among the many applications in which VLC systems are used, one of them is harsh environments such as Underground Mining (UM) tunnels. However, these environments are subject to degrading environmental and intrinsic challenges for optical links. Therefore, current research should focus on solutions to mitigate these problems and improve the performance of Underground Mining Visible Light Communication (UM-VLC) systems. In this context, this article presents a novel solution that involves an improvement to the Angle Diversity Receivers (ADRs) based on the adaptive orientation of the Photo-Diodes (PDs) in terms of the Received Signal Strength Ratio (RSSR) scheme. Specifically, this methodology is implemented in a hemidodecahedral ADR and evaluated in a simulated UM-VLC scenario. The performance of the proposed design is evaluated using metrics such as received power, user data rate, and bit error rate (BER). Furthermore, our approach is compared with state-of-the-art ADRs implemented with fixed PDs and with the Time of Arrival (ToA) reception method. An improvement of at least 60% in terms of the analyzed metrics compared to state-of-the-art solutions is obtained. Therefore, the numerical results demonstrate that the hemidodecahedral ADR, with adaptive orientation PDs, enhances the received optical signal. Furthermore, the proposed scheme improves the performance of the UM-VLC system due to its optimum adaptive angular positioning, which is completed according to the strongest optical received signal power. By improving the performance of the UM-VLC system, this novel method contributes to further consideration of VLC systems as potential and enabling technologies for future 6G deployments.

Identifiants

pubmed: 36359600
pii: e24111507
doi: 10.3390/e24111507
pmc: PMC9689729
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : Agencia Nacional de Investigación y Desarrollo
ID : 21190489
Organisme : Fondecyt
ID : 1211132

Références

Sensors (Basel). 2016 Aug 08;16(8):
pubmed: 27509504
Sensors (Basel). 2020 Jan 09;20(2):
pubmed: 31936434
Philos Trans A Math Phys Eng Sci. 2020 Apr 17;378(2169):20190187
pubmed: 32114913

Auteurs

Pablo Palacios Játiva (P)

Department of Electrical Engineering, Universidad de Chile, Santiago 8370451, Chile.
Escuela de Informática y Telecomunicaciones, Universidad Diego Portales, Santiago 8370190, Chile.

Iván Sánchez (I)

Department of Telecommunication Engineering, Universidad de Las Américas, Quito 170503, Ecuador.

Ismael Soto (I)

Department of Electrical Engineering, Universidad de Santiago de Chile, Santiago 9170124, Chile.

Cesar A Azurdia-Meza (CA)

Department of Electrical Engineering, Universidad de Chile, Santiago 8370451, Chile.

David Zabala-Blanco (D)

Department of Computing and Industries, Universidad Católica del Maule, Talca 3466706, Chile.

Muhammad Ijaz (M)

School of Engineering, Manchester Metropolitan University, Manchester M13 9PR, UK.

Ali Dehghan Firoozabadi (A)

Department of Electricity, Universidad Tecnológica Metropolitana, Av. Jose Pedro Alessandri 1242, Santiago 7800002, Chile.

David Plets (D)

Department of Information Technology, Ghent University/IMEC, 9052 Ghent, Belgium.

Classifications MeSH