2016
DOI: 10.12988/ams.2016.511712
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Attraction force optimization (AFO): a deterministic nature-inspired heuristic for solving optimization problems in stochastic simulation

Abstract: The paper presents a new optimization heuristic called AFO-Attraction Force Optimization, able to maximize discontinuous, non-differentiable and highly nonlinear functions in discrete simulation problems. The algorithm was developed specifically to overcome the limitations of traditional search algorithms in optimization problems performed on discreteevent simulation models used, for example, to study industrial systems and processes. Such applications are characterized by three particular aspects: the respons… Show more

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Cited by 3 publications
(1 citation statement)
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“…Another similar algorithm is the general relativity search algorithm (GRSA) which utilizes general relativity principles to solve optimization problems [331]. Bendato et al have also developed attraction force optimization (AFO) based on Newton's law of universal gravitation [332]. Space gravity optimization (SGO) is another similar example inspired by the gravitational force between asteroids [333].…”
Section: Other Algorithmsmentioning
confidence: 99%
“…Another similar algorithm is the general relativity search algorithm (GRSA) which utilizes general relativity principles to solve optimization problems [331]. Bendato et al have also developed attraction force optimization (AFO) based on Newton's law of universal gravitation [332]. Space gravity optimization (SGO) is another similar example inspired by the gravitational force between asteroids [333].…”
Section: Other Algorithmsmentioning
confidence: 99%