2023
DOI: 10.1007/s11831-022-09876-8
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Archimedes Optimizer: Theory, Analysis, Improvements, and Applications

Abstract: The intricacy of the real-world numerical optimization tribulations has full-fledged and diversely amplified necessitating proficient yet ingenious optimization algorithms. In the domain wherein the classical approaches fall short, the predicament resolving nature-inspired optimization algorithms (NIOA) tend to hit upon an excellent solution to unbendable optimization problems consuming sensible computation time. Nevertheless, in the last few years approaches anchored in nonlinear physics have been anticipated… Show more

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Cited by 14 publications
(6 citation statements)
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“…x i,j (t + 1) = best x j ÷ (MoPr + 𝜖) × U j − L j × 𝜇 + L j , rand2 < 0.5 best x j × (MoPr) × U j − L j × 𝜇 + L j , Otherwise (4) In AOA, the exploitation strategy has been developed using Subtraction (S) or Addition (A) operators as formulated in Eq. (5). Here is also a constant which is fixed equal to 0.5 in the source paper.…”
Section: Overview Of Aoamentioning
confidence: 99%
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“…x i,j (t + 1) = best x j ÷ (MoPr + 𝜖) × U j − L j × 𝜇 + L j , rand2 < 0.5 best x j × (MoPr) × U j − L j × 𝜇 + L j , Otherwise (4) In AOA, the exploitation strategy has been developed using Subtraction (S) or Addition (A) operators as formulated in Eq. (5). Here is also a constant which is fixed equal to 0.5 in the source paper.…”
Section: Overview Of Aoamentioning
confidence: 99%
“…Many NIOAs have been created in the present that mimic the characteristics of biological and natural systems [3]. These algorithms are extremely robust and effective at resolving practical optimization issues in a reasonable amount of time [3][4][5]. Creating these sophisticated algorithms has as its goal the generation of novel and effective answers to the challenging optimization problems that arise in the actual world.…”
Section: Introductionmentioning
confidence: 99%
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“…4.2, many swarm-based [239] and human-based meta-heuristic algorithms [240] have been combined with EO for different types of optimization problems. Further applications or integrations of other NIOA algorithm [241] types are possible, such as Plant-based, Maths-based or even Physics-Chemistrybased meta-heuristic algorithms [242,243], to determine the EO's potential, improve computational performance, and produce good solutions. 4.…”
Section: Conclusion and Future Research Directionsmentioning
confidence: 99%
“…The goal of optimization is to find the best solution to a problem. The metaheuristic algorithm is one of the most powerful tools for solving optimization problems [21][22][23][24][25].…”
Section: Introductionmentioning
confidence: 99%