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Genetic Algorithm for Community Detection in Biological Networks

Ben M'barek, Marwa; Borgi, Amel; Bedhiafi, Walid; Ben Hmida, Sana (2018), Genetic Algorithm for Community Detection in Biological Networks, Procedia Computer Science, 126, p. 195-204. 10.1016/j.procs.2018.07.233

Type
Article accepté pour publication ou publié
Date
2018
Journal name
Procedia Computer Science
Volume
126
Publisher
Elsevier
Pages
195-204
Publication identifier
10.1016/j.procs.2018.07.233
Metadata
Show full item record
Author(s)
Ben M'barek, Marwa
Laboratoire d'Informatique, Programmation, Algorithmique et Heuristique [LIPAH]
Borgi, Amel
Laboratoire d'Informatique, Programmation, Algorithmique et Heuristique [LIPAH]
Bedhiafi, Walid

Ben Hmida, Sana
Laboratoire d'analyse et modélisation de systèmes pour l'aide à la décision [LAMSADE]
Abstract (EN)
We are interested in the detection of communities in biological networks. We focus more precisely on gene interaction networks. They represent protein-protein or gene-gene interactions. A community in such networks corresponds to a set of proteins or genes that collaborate at the same cellular function. Our goal is to identify such network or community from gene annotation sources such as Gene Ontology (GO). In this paper, we propose a Genetic Algorithm (GA) based approach to discover communities in a gene interaction network. Special solution coding and mutation operator are introduced. Otherwise, we propose a specific fitness function based on similarity measure and interaction value between genes. Experiments on real data extracted from the well-known Kyoto Encyclopedia of Genes and Genomes (KEGG) database show the ability of the proposed method to successfully detect existing or even new communities.
Subjects / Keywords
community detection; biological networks; Gene Ontology; Genetic Algorithm; Kyoto Encyclopedia of Genes; Genomes (KEGG) database

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