Clique Finder
Author:
Affiliation:
1. Department of Computer Science, College of Computer and Information Sciences, King Saud University, Saudi Arabia
2. Department of Computer Science, College of Computer and Information Sciences, Saudi Arabia
Abstract
The Maximum Clique Problem (MCP) is a classical NP-hard problem that has gained considerable attention due to its numerous real-world applications and theoretical complexity. It is inherently computationally complex, and so exact methods may require prohibitive computing time. Nature-inspired meta-heuristics have proven their utility in solving many NP-hard problems. In this research, we propose a simulated annealing-based algorithm that we call Clique Finder algorithm to solve the MCP. Our algorithm uses a logarithmic cooling schedule and two moves that are selected in an adaptive manner. The objective (error) function is the total number of missing links in the clique, which is to be minimized. The proposed algorithm was evaluated using benchmark graphs from the open-source library DIMACS, and results show that the proposed algorithm had a high success rate.
Publisher
IGI Global
Subject
Decision Sciences (miscellaneous),Computational Mathematics,Computational Theory and Mathematics,Control and Optimization,Computer Science Applications,Modeling and Simulation,Statistics and Probability
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1. An improved binary Crow-JAYA optimisation system with various evolution operators, such as mutation for finding the max clique in the dens graph;International Journal of Computing Science and Mathematics;2024
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