2018
DOI: 10.1016/j.swevo.2017.09.009
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Ensemble of parameters in a sinusoidal differential evolution with niching-based population reduction

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Cited by 59 publications
(24 citation statements)
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References 33 publications
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“…Content may change prior to final publication. 24,19,18,19,17,17,21,19,29,28,18,21,22,26 and 20 test problems, respectively, worse than them in 6, 10, 11, 8, 8, 9, 8, 10, 1, 1, 10, 9, 7, 4, and 9 test functions respectively. In regards to the Wilcoxon test, the proposed algorithm is statistically better than DE-VNS, sinDE, MPEDE, LSHADE, LSHADE44, CoDE, EPSDE, jDE, IDE, ERG-EFADE and SHADE, while there is no siginicance difference with AEPD-JADE, EDEV, iL-SHADE and jSO.…”
Section: G Testing Marlwcma On Higher Dimensionsmentioning
confidence: 92%
See 1 more Smart Citation
“…Content may change prior to final publication. 24,19,18,19,17,17,21,19,29,28,18,21,22,26 and 20 test problems, respectively, worse than them in 6, 10, 11, 8, 8, 9, 8, 10, 1, 1, 10, 9, 7, 4, and 9 test functions respectively. In regards to the Wilcoxon test, the proposed algorithm is statistically better than DE-VNS, sinDE, MPEDE, LSHADE, LSHADE44, CoDE, EPSDE, jDE, IDE, ERG-EFADE and SHADE, while there is no siginicance difference with AEPD-JADE, EDEV, iL-SHADE and jSO.…”
Section: G Testing Marlwcma On Higher Dimensionsmentioning
confidence: 92%
“…This is done by using a new ensemble sinusoidal mechanism that automatically tunes F and Cr values. Their proposed algorithm was called LSHADE-EpSin, which it was later enhanced by using a mixture of a Cauchy distribution and two sinusoidal formulas, a restart mechanism that is used at the later generations and a new way to adapt the population size [28]. Mohamed et al [29] proposed a new adaptation technique, semi-parameter adaptation approach, to tune the values of F and Cr in LSHADE algorithm.…”
Section: A De and Its Variantsmentioning
confidence: 99%
“…For rigorous performance verification, Hybrid DA-DE is compared with the following 10 DE-based algorithms (i.e. IMMSADE [5], AGDE [7], EFADE [9], MPEDE [11], EDEV [14], Rank-jDE [15], SHADE [16], Rcr-JADE [17], LSHADE-EpSin [18], EsDEr-NR [21]) and 6 non-DE-based algorithms (i.e. MFO [42], MVO [43], DA [34], ALO [44], WOA [45] and SCA [46]), which are tested on CEC2005, CEC2015 and CEC2017 benchmark functions.…”
Section: Parameter Settings and Involved Algorithmsmentioning
confidence: 99%
“…Wang and Zhao [20] proposed a differential evolution (DE) algorithm with self-adaptive population resizing mechanism (called SapsDE). Award and Ali [21] et al proposed ensemble sinusoidal differential evolution with niching-based population reduction (called EsDEr-NR).…”
Section: Introductionmentioning
confidence: 99%
“…Sun et al [19] adopted a novel Gaussian mutation operator and a modified common mutation operator to collaboratively produce new mutant vectors. Awad et al [20] proposed ensemble of parameters in a sinusoidal differential evolution with niching-based population reduction. EsDE r -NR uses a mixture of two sinusoidal formulas and a Cauchy distribution to balance the exploration and exploitation of best solutions ever found.…”
Section: Introductionmentioning
confidence: 99%