Utilize este identificador para referenciar este registo: http://hdl.handle.net/10362/172764
Título: Adaptive Traffic Control Using Cooperative Communication Through Visible Light
Autor: Vieira, Manuel Augusto
Vieira, Manuela
Louro, Paula
Vieira, Pedro
Fernandes, Rafael
Palavras-chave: Deep reinforcement learning model
Light controlled intersection
Queue distance
Traffic control
Vehicular communication
“Mesh/cellular” hybrid network
Computer Science(all)
Computer Science Applications
Computer Networks and Communications
Computer Graphics and Computer-Aided Design
Computational Theory and Mathematics
Artificial Intelligence
SDG 11 - Sustainable Cities and Communities
Data: Jan-2024
Resumo: The study aims to create a Visible-Light Communication (VLC) system for secure vehicle management at intersections. This involves enabling communication between vehicles and infrastructure (V2V, V2I, and I2V) using headlights, streetlights, and traffic signals. Mobile optical receivers gather data, determine their location, and read transmitted information through joint transmission. An intersection manager coordinates traffic and communicates with vehicles through embedded Driver Agents. The system utilizes a "mesh/cellular" hybrid network configuration and encodes data into light signals emitted by transmitters. Optical sensors and filtering properties enable reception and decoding. The study demonstrates bidirectional communication, employing queue/request/response mechanisms and relative pose concepts for safe vehicle passage. A deep reinforcement learning model controls traffic light cycles, validated via simulation in a Simulation of Urban Mobility simulator. Results show that this adaptive traffic control system effectively collects detailed vehicle data and ensures secure communication within the short-range mesh network.
Descrição: Funding Information: Manuel Vieira, Manuela Vieira, Paula Louro, Pedro Vieira, and Rafael Fernandes declare that they do not have any conflicts of interest. This work was sponsored by FCT – Fundação para a Ciência e a Tecnologia, within the Research Unit CTS-Center of Technology and Systems, and by IPL/2022/POSEIDON_ISEL. This article does not contain any studies with human participants or animals performed by any of the authors. Publisher Copyright: © 2024, The Author(s).
Peer review: yes
URI: http://hdl.handle.net/10362/172764
DOI: https://doi.org/10.1007/s42979-023-02483-9
ISSN: 2662-995X
Aparece nas colecções:Home collection (FCT)

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