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Article

An Intelligent Optimized Route-Discovery Model for IoT-Based VANETs

1
Department of Computer Science & Technology, Madanapalle Institute of Technology and Science, Madanapalle 522403, India
2
Department of Computer Science and Engineering, Women’s Institute of Technology, Dehradun 248001, India
3
Department of Electronics & Electrical Engineering, Lovely Professional University, Phagwara 144411, India
4
Department of Computer Science, College of Computer, Qassim University, Buraydah 51452, Saudi Arabia
5
Department of Computer Science and Engineering, Lovely Professional University, Phagwara 144411, India
6
Faculty of Engineering, Université de Moncton, Moncton, NB E1A3E9, Canada
7
School of Electric Engineering and Electronic Engineering, University of Johannesburg, P.O. Box 524, Auckland Park 2006, South Africa
8
Department of Information Technology, University of Haripur, Haripur 22620, Pakistan
*
Author to whom correspondence should be addressed.
Processes 2021, 9(12), 2171; https://doi.org/10.3390/pr9122171
Submission received: 28 October 2021 / Revised: 13 November 2021 / Accepted: 22 November 2021 / Published: 2 December 2021

Abstract

Intelligent Transportation system are becoming an interesting research area, after Internet of Things (IoT)-based sensors have been effectively incorporated in vehicular ad hoc networks (VANETs). The optimal route discovery in a VANET plays a vital role in establishing reliable communication in uplink and downlink direction. Thus, efficient optimal path discovery without a loop-free route makes network communication more efficient. Therefore, this challenge is addressed by nature-inspired optimization algorithms because of their simplicity and flexibility for solving different kinds of optimization problems. NIOAs are copied from natural phenomena and fall under the category of metaheuristic search algorithms. Optimization problems in route discovery are intriguing because the primary objective is to find an optimal arrangement, ordering, or selection process. Therefore, many researchers have proposed different kinds of optimization algorithm to maintain the balance between intensification and diversification. To tackle this problem, we proposed a novel Java macaque algorithm based on the genetic and social behavior of Java macaque monkeys. The behavior model mimicked from the Java macaque monkey maintains well-balanced exploration and exploitation in the search process. The experimentation outcome depicts the efficiency of the proposed Java macaque algorithm compared to existing algorithms such as discrete cuckoo search optimization (DCSO) algorithm, grey wolf optimizer (GWO), particle swarm optimization (PSO), and genetic algorithm (GA).
Keywords: intelligent route discovery; IoT-based VANET; autonomous vehicle; energy efficiency; java macaque algorithm intelligent route discovery; IoT-based VANET; autonomous vehicle; energy efficiency; java macaque algorithm

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MDPI and ACS Style

Karunanidy, D.; Ramalingam, R.; Dumka, A.; Singh, R.; Alsukayti, I.; Anand, D.; Hamam, H.; Ibrahim, M. An Intelligent Optimized Route-Discovery Model for IoT-Based VANETs. Processes 2021, 9, 2171. https://doi.org/10.3390/pr9122171

AMA Style

Karunanidy D, Ramalingam R, Dumka A, Singh R, Alsukayti I, Anand D, Hamam H, Ibrahim M. An Intelligent Optimized Route-Discovery Model for IoT-Based VANETs. Processes. 2021; 9(12):2171. https://doi.org/10.3390/pr9122171

Chicago/Turabian Style

Karunanidy, Dinesh, Rajakumar Ramalingam, Ankur Dumka, Rajesh Singh, Ibrahim Alsukayti, Divya Anand, Habib Hamam, and Muhammad Ibrahim. 2021. "An Intelligent Optimized Route-Discovery Model for IoT-Based VANETs" Processes 9, no. 12: 2171. https://doi.org/10.3390/pr9122171

APA Style

Karunanidy, D., Ramalingam, R., Dumka, A., Singh, R., Alsukayti, I., Anand, D., Hamam, H., & Ibrahim, M. (2021). An Intelligent Optimized Route-Discovery Model for IoT-Based VANETs. Processes, 9(12), 2171. https://doi.org/10.3390/pr9122171

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