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Алгоритм слизевиков×Алгоритм арифметической оптимизации×
ОбластьОптимизацияОптимизация
СемействоMachine learningMachine learning
Год появления20202020
Автор методаShimin LiLaith Abualigah
ТипNature-inspired metaheuristic algorithmMathematical metaheuristic algorithm
Основополагающий источникLi, S., Chen, H., Wang, M., Heidari, A. A., & Chakraborty, S. (2020). Slime mould algorithm: A new method for stochastic optimization. Future Generation Computer Systems, 111, 300-323. DOI ↗Abualigah, 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 ↗
Другие названияSMAAOA
Связанные55
СводкаThe Slime Mould Algorithm (SMA) is a nature-inspired metaheuristic optimization technique introduced by Li et al. in 2020. It mimics the behavior of slime moulds, which spread and contract to find optimal food sources. SMA addresses complex optimization problems by simulating the adaptive foraging and spatial distribution patterns of these organisms.The 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.
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ScholarGateСравнение методов: Slime Mould Algorithm · Arithmetic Optimization Algorithm. Получено 2026-06-15 из https://scholargate.app/ru/compare