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Bat-Cluster: A Bat Algorithm-based Automated Graph Clustering Approach

Boulouard, ZakariaEl Haddadi, AmineBouhafer, FadwaEl Haddadi, AnassKoutti, LahcenDousset, Bernard
International Journal of Electrical and Computer Engineering (IJECE) (Sinta 1)Vol. 0 No. 01 April 2018
DOI10.11591/ijece.v8i2.pp1122-1130

Abstrak

Defining the correct number of clusters is one of the most fundamental tasks in graph clustering. When it comes to large graphs, this task becomes more challenging because of the lack of prior information. This paper presents an approach to solve this problem based on the Bat Algorithm, one of the most promising swarm intelligence based algorithms. We chose to call our solution, “Bat-Cluster (BC).” This approach allows an automation of graph clustering based on a balance between global and local search processes. The simulation of four benchmark graphs of different sizes shows that our proposed algorithm is efficient and can provide higher precision and exceed some best-known values.

Kata Kunci

Computer and InformaticsAutomated clusteringbat algortihm, bat-cluster, large graphs, swarm intelligence

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Bat-Cluster: A Bat Algorithm-based Automated Graph Clustering Approach | International Journal of Electrical and Computer Engineering (IJECE) | Publiora