Li-Fi Computing Based Vehicle-to-Vehicle Communication for Traffic Management Utilization of Detour Global Domination the Graph's Number

International Journal of Electronics and Communication Engineering
© 2024 by SSRG - IJECE Journal
Volume 11 Issue 10
Year of Publication : 2024
Authors : Sheeba. G, Selvarajan. T. M
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How to Cite?

Sheeba. G, Selvarajan. T. M, "Li-Fi Computing Based Vehicle-to-Vehicle Communication for Traffic Management Utilization of Detour Global Domination the Graph's Number," SSRG International Journal of Electronics and Communication Engineering, vol. 11,  no. 10, pp. 202-210, 2024. Crossref, https://doi.org/10.14445/23488549/IJECE-V11I10P116

Abstract:

Light fidelity (Li-Fi) is an emerging technology that uses light as a medium for signal transmission. It is a completely networked wireless communication method that is bidirectional and concentrates on using light-emitting diodes (LEDs). The proposed LI-FI-based Vehicle-to-Vehicle Communication (V2V) for Detour Global Domination uses the Graph's Number to communicate data between vehicles. This work introduces us to detour GD in several popular graphs and graph coronas. These graphics use readers so electronic information on the vehicles can be retrieved easily, allowing for a proper study of the automobiles' location. Using this Li-Fi technology, many lives can be saved and road accidents avoided. An ultrasonic distance detecting sensor is used to permit communication between cars that are close enough to touch. As a result, this project will focus on eco-friendly visible light data transmission between autos. The visible light consists of white LEDs that send audio impulses to the receiver. VLC has a promising future and improves existing RF communication by increasing efficiency. The result of the proposed approach ensures highly reliable communication between cars, reducing the increasing number of road accidents in the present times and identifying v2v distance.

Keywords:

Li-Fi (Light Fidelity), Visible light Communication, Vehicle to Vehicle Communication (V2V), Detour number, Detour global domination number.

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