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Algorithme d'Optimisation Arithmétique×Algorithme génétique×
DomaineOptimisationOptimisation
FamilleMachine learningProcess / pipeline
Année d'origine20201975
Auteur d'origineLaith AbualigahJohn Henry Holland
TypeMathematical metaheuristic algorithmPopulation-based metaheuristic
Source fondatriceAbualigah, L., Yousri, D., Abd Elaziz, M., Ewees, A. A., Al-qaness, M. A., & Gandomi, A. H. (2021). Arithmetic optimization algorithm: A new metaheuristic algorithm for solving optimization problems. Applied Mathematics and Computation, 392, 125450. link ↗Holland, J.H. (1975). Adaptation in Natural and Artificial Systems. University of Michigan Press. link ↗
AliasAOAGA, evolutionary algorithm, Genetik Algoritma — Evrimsel Optimizasyon
Apparentées55
RésuméThe Arithmetic Optimization Algorithm (AOA) is a metaheuristic optimization approach introduced by Abualigah et al. in 2020 that leverages mathematical operators (multiplication, division, addition, subtraction) as the inspiration for search strategies. Unlike nature-inspired algorithms, AOA uses the inherent properties of arithmetic operations to balance exploration and exploitation, making it particularly effective for mathematical optimization problems.A genetic algorithm (GA) is a population-based metaheuristic optimization method introduced by John Henry Holland (1975) that mimics the principles of natural selection. It maintains a population of candidate solutions and iteratively improves them through selection, crossover, and mutation operators, making it especially powerful on discontinuous, non-convex, and multi-modal search spaces where classical gradient-based methods fail.
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ScholarGateComparer des méthodes: Arithmetic Optimization Algorithm · Genetic Algorithm. Consulté le 2026-06-15 sur https://scholargate.app/fr/compare