Developing a pervasive edge computing environment for Vehicular Communication using modified Reinforcement Learning in Routing and Dynamic Traffic Flow Prediction

Author:

Alqahtani Abdulrahman Saad1,Ramakrishnan Jayabrabu2,Saravanan M3,H Abdul Shabeer4,A Alavudeen Basha5,P Parthasarathy6,Mubarakali Azath7

Affiliation:

1. University of Bisha

2. Jazan University

3. KPRIET: KPR Institute of Engineering and Technology

4. Kyndryl Solution Private Limited

5. Excel College of Engineering and Technology

6. CMR Institute of Technology

7. King Khalid University

Abstract

AbstractVehicular networking in smart autonomous connected vehicle communications evolved with high mobility and due to high dynamics in an urban environment, new challenges are addressed by academicians and researchers for providing better support. Dynamic changes of vehicular nodes position, routing in Vehicular Adhoc Network (VANET) using existing traditional networking routing algorithms may not provide optimal solution for efficient communication. Also predicting or forecasting traffic flow in VANET can be improved through sharing traffic information in real-time using intelligent transportation systems. In this paper we proposed modified reinforcement learning algorithm that supports for optimal route identification for dynamically disconnected vehicles in urban environment by considering its previous state and predicts flow of traffic generated by vehicles in various time interval. Experimental result shows better performance in routing parameters like packet delivery ratio, routing overhead, latency and predicting traffic flow by proposed algorithms achieves significant accomplishments comparing to existing algorithms.

Publisher

Research Square Platform LLC

Reference41 articles.

1. Toward intelligent vehicular networks: A machine learning framework;Liang L;IEEE Internet of Things Journal,2018

2. Enhanced machine learning approach with orthogonal frequency division multiplexing to avoid congestion in wireless communication system;Alqahtani AS;Opt Quant Electron,2023

3. Intelligent and Secure Vehicular Network using Machine Learning. JETIR-International Journal of Emerging Technologies and Innovative Research (www.jetir. org);Sharma M,2018

4. Bhatti DM, Saqib Y, Rehman PS, Rajput S, Ahmed P, Kumar, Kumar D (2021) "Machine Learn based cluster formation Veh communication " Telecommunication Syst : 1–9

5. Investigation of hybrid spectrum slicing-wavelength division multiplexing (SS-WDM) in transparent medium for mode division multiplexing applications;Alqahtani AS;Opt Quant Electron,2023

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