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Complex systems approximate matching approach for large graphs classification optimized by NSGA-II

  • Sfax University

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Résumé

Complex systems are strongly emerging in various domains from defense/space to network of enterprises. Graph modeling is extensively used to represent these complex systems. The design of these complex systems are increasingly under stringent constraints in design cost and Time To Market (T.T.M.). It is of paramount importance to exploit 'design-and-reuse' approaches in building these systems. The reuse can be based on subsystems or systems. Reuse requires identification of graph representations of these subsystems and systems in the large graph representation of complex systems. We propose a combined approach for large graph classification approach based on an approximate matching method and genetic algorithm. The first stage of this method is to perform the comparison on simpler graphs called prime graphs in order to refine the time complexity. The second stage quality of the classification is improved through multiobjective optimization with NSGA II. The values to be optimized are the recognition rate and the confusion rate. Experiment demonstrate the validity of our approach for complex systems.

langue originaleAnglais
titre6th International Conference on Soft Computing and Pattern Recognition, SoCPaR 2014
EditeurInstitute of Electrical and Electronics Engineers Inc.
Pages112-117
Nombre de pages6
ISBN (Electronique)9781479959341
Les DOIs
étatPublié - 12 janv. 2014
Evénement6th International Conference on Soft Computing and Pattern Recognition, SoCPaR 2014 - Tunis, Tunisie
Durée: 11 août 201414 août 2014

Série de publications

Nom6th International Conference on Soft Computing and Pattern Recognition, SoCPaR 2014

Une conférence

Une conférence6th International Conference on Soft Computing and Pattern Recognition, SoCPaR 2014
Pays/TerritoireTunisie
La villeTunis
période11/08/1414/08/14

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