Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10609/127057
Título : Fuzzy simheuristics: solving optimization problems under stochastic and uncertainty scenarios
Autoría: Oliva Navarro, Diego Alberto
Copado Mendez, Pedro Jesus  
Hinojosa, Salvador
Panadero Martínez, Javier
Riera Terrén, Daniel  
Juan, Angel A.  
Otros: Universitat Oberta de Catalunya. Internet Interdisciplinary Institute (IN3)
Universitat Oberta de Catalunya (UOC)
Universidad de Guadalajara
Instituto Tecnológico y de Estudios Superiores de Monterrey
Citación : Oliva, D. A., Copado, P. J., Hinojosa, S., Panadero, J., Riera, D., Juan, A. A.(2020). Fuzzy Simheuristics: Solving Optimization Problems under Stochastic and Uncertainty Scenarios. Mathematics, 8(12). pág. 1-19. doi: 10.3390/math8122240
Resumen : Simheuristics combine metaheuristics with simulation in order to solve the optimization problems with stochastic elements. This paper introduces the concept of fuzzy simheuristics, which extends the simheuristics approach by making use of fuzzy techniques, thus allowing us to tackle optimization problems under a more general scenario, which includes uncertainty elements of both stochastic and non-stochastic nature. After reviewing the related work, the paper discusses, in detail, how the optimization, simulation, and fuzzy components can be efficiently integrated. In order to illustrate the potential of fuzzy simheuristics, we consider the team orienteering problem (TOP) under an uncertainty scenario, and perform a series of computational experiments. The obtained results show that our proposed approach is not only able to generate competitive solutions for the deterministic version of the TOP, but, more importantly, it can effectively solve more realistic TOP versions, including stochastic and other uncertainty elements.
Palabras clave : simulación-optimización
simheurística
técnicas difusas
incertidumbre
DOI: 10.3390/math8122240
Tipo de documento: info:eu-repo/semantics/article
Versión del documento: info:eu-repo/semantics/publishedVersion
Fecha de publicación : 18-dic-2020
Licencia de publicación: http://creativecommons.org/licenses/by/4.0  
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