Title of article :
New Functions for Mass Calculation in Gravitational Search Algorithm
Author/Authors :
ebrahimi mood, sepehr Department of Computer Science - Shahid Bahonar University of Kerman , rashedi, esmat Department of Electrical Engineering - Graduate University of Advanced Technology , javidi, mohammad masoud Department of Computer Science - Shahid Bahonar University of Kerman
Pages :
14
From page :
233
To page :
246
Abstract :
Nowadays, optimization problems are large-scale and complicated, so heuristic optimization algorithms have become common for solving them. Gravitational Search Algorithm (GSA) is one of the heuristic algorithms for solving optimization problems inspired by Newton's lows of gravity and motion. Denition and calculation of masses in GSA have an impact on the performance of the algorithm. Dening appropriate functions for mass calculation improves the exploitation and exploration power of the algorithm and prevents the algorithm from getting trapped in local optima. In this paper, Sigma scaling and Boltzmann selection functions are examined for mass calculation in GSA. The proposed functions are evaluated on some standard test functions including unimodal functions and multimodal functions. The obtained results are compared with the standard GSA, genetic algorithm, particle swarm optimization algorithm, gravitational particle swarm algorithm and clustered-GSA. Experimental results show that the proposed method outperforms the state-of-the-art optimization algorithms, despite the simplicity of implementation.
Keywords :
Gravitational Search Algorithm , Heuristic Search Algorithm , Scaling Functions , Exploration and Exploitation , Mass Calculation
Journal title :
Astroparticle Physics
Serial Year :
2015
Record number :
2468168
Link To Document :
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