2021
DOI: 10.1109/access.2021.3133579
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A Modification of the Imperialist Competitive Algorithm With Hybrid Methods for Constrained Optimization Problems

Abstract: This paper studies a modification of the imperialist competitive algorithm to solve constrained optimization problems with hybrid methods. The imperialist competitive algorithm is a kind of evolutionary algorithm based on the colonial competition mechanism of imperialism, which is a type of social heuristic optimization algorithm. However, this algorithm needs to be modified because of some problems, including the decreasing number of empires, which leads to easily falling into a local optimum, and a lack of i… Show more

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Cited by 11 publications
(9 citation statements)
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References 36 publications
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“…The initial diversity of the population can effectively expand the search range of the algorithm and improve the optimization level and convergence speed of the algorithm [71,72]. In the standard BWOA, the random initial population position would cause the uneven position distribution of black widows, which will affect the development ability of the algorithm.…”
Section: A Population Initialization Through Double Chaotic Mappingmentioning
confidence: 99%
“…The initial diversity of the population can effectively expand the search range of the algorithm and improve the optimization level and convergence speed of the algorithm [71,72]. In the standard BWOA, the random initial population position would cause the uneven position distribution of black widows, which will affect the development ability of the algorithm.…”
Section: A Population Initialization Through Double Chaotic Mappingmentioning
confidence: 99%
“…One such algorithm is the Imperialist Competitive Algorithm (ICA), which was developed by Gargari et al [30]. This is a new meta-heuristic optimization algorithm that incorporates political and social evolution [32]. The algorithm classifies the most powerful nations as imperialists and the rest as colonies.…”
Section: Optimization Of Process Parameters (1) Optimization By Icamentioning
confidence: 99%
“…θ and x are uniformly distributed random numbers. β is a number greater than one, d represents the distance between the imperialists and colonies, and γ is a parameter that determines the extent of deviation from the original direction [28,[30][31][32].…”
Section: Optimization Of Process Parameters (1) Optimization By Icamentioning
confidence: 99%
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“…We observed that currently in the scientific literature, the promising evolutionary algorithm for optimization inspired by imperialistic competition (ICA) still has not been used to design and optimize analog and RF CMOS ICs with robustness analyses in the optimization loop; however, it has been used very successfully to solve many optimization problems in other engineering areas [22][23][24]. Therefore, the motivation of this study is to propose a customized imperialist competitive algorithm (ICA) to design and optimize robust Miller CMOS OTAs with two different bulk CMOS IC manufacturing processes from the Taiwan Semiconductor Company (TSMC) (180 nm and 65 nm nodes).…”
Section: Introductionmentioning
confidence: 99%