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A Hybridization of Gravitational Search Algorithm and Particle Swarm Optimization for Odor Source Localization

A Hybridization of Gravitational Search Algorithm and Particle Swarm Optimization for Odor Source Localization
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Author(s): Upma Jain (ABV-IIITM Gwalior, India), W. Wilfred Godfrey (ABV-IIITM Gwalior, India)and Ritu Tiwari (Robotics and Intelligent System Design Lab ABV-IIITM Gwalior, India)
Copyright: 2020
Pages: 15
Source title: Robotic Systems: Concepts, Methodologies, Tools, and Applications
Source Author(s)/Editor(s): Information Resources Management Association (USA)
DOI: 10.4018/978-1-7998-1754-3.ch072

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Abstract

This paper concerns with the problem of odor source localization by a team of mobile robots. The authors propose two methods for odor source localization which are largely inspired from gravitational search algorithm and particle swarm optimization. The intensity of odor across the plume area is assumed to follow the Gaussian distribution. As robots enter in the vicinity of plume area they form groups using K-nearest neighbor algorithm. The problem of local optima is handled through the use of search counter concept. The proposed approaches are tested and validated through simulation.

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