Hybridizing differential evolution and novelty search for multimodal optimization problems

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5 Citas (Scopus)

Resumen

Multimodal optimization has shown to be a complex paradigm underneath real-world problems arising in many practical applications, with particular prevalence in physics-related domains. Among them, a plethora of cases within the computational design of aerospace structures can be modeled as a multimodal optimization problem, such as aerodynamic optimization or airfoils and wings. This work aims at presenting a new research direction towards efficiently tackling this kind of optimization problems, which pursues the discovery of the multiple (at least locally optimal) solutions of a given optimization problem. Specifically, we propose to exploit the concept behind the so-called Novelty Search mechanism and embed it into the self-adaptive Differential Evolution algorithm so as to gain an increased level of controlled diversity during the search process. We assess the performance of the proposed solver over the well-known CEC'2013 suite of multimodal test functions. The obtained outcomes of the designed experimentation supports our claim that Novelty Search is a promising approach for heuristically addressed multimodal problems.

Idioma originalInglés
Título de la publicación alojadaGECCO 2019 Companion - Proceedings of the 2019 Genetic and Evolutionary Computation Conference Companion
EditorialAssociation for Computing Machinery, Inc
Páginas1980-1989
Número de páginas10
ISBN (versión digital)9781450367486
DOI
EstadoPublicada - 13 jul 2019
Evento2019 Genetic and Evolutionary Computation Conference, GECCO 2019 - Prague, República Checa
Duración: 13 jul 201917 jul 2019

Serie de la publicación

NombreGECCO 2019 Companion - Proceedings of the 2019 Genetic and Evolutionary Computation Conference Companion

Conferencia

Conferencia2019 Genetic and Evolutionary Computation Conference, GECCO 2019
País/TerritorioRepública Checa
CiudadPrague
Período13/07/1917/07/19

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