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Adaptive particle swarm optimization for optimal orbital elements of binary stars
Authors:Abdel-Fattah Attia
Institution:1.Faculty of Engineering, Department of Electrical Engineering,Kafrelsheikh University,Kafrelsheikh,Egypt;2.Intelligent System Research Group (ISRG),Kafrelsheikh University,Kafrelsheikh,Egypt;3.Deanship of Scientific Research,King Abdulaziz University,Jeddah,Saudi Arabia
Abstract:The paper presents an adaptive particle swarm optimization (APSO) as an alternative method to determine the optimal orbital elements of the star η Bootis of MK type G0 IV. The proposed algorithm transforms the problem of finding periodic orbits into the problem of detecting global minimizers as a function, to get a best fit of Keplerian and Phase curves. The experimental results demonstrate that the proposed approach of APSO generally more accurate than the standard particle swarm optimization (PSO) and other published optimization algorithms, in terms of solution accuracy, convergence speed and algorithm reliability.
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