LAPSE:2023.1325
Published Article
LAPSE:2023.1325
Diversity-Based Evolutionary Population Dynamics: A New Operator for Grey Wolf Optimizer
February 21, 2023
Abstract
Evolutionary Population Dynamics (EPD) refers to eliminating poor individuals in nature, which is the opposite of survival of the fittest. Although this method can improve the median of the whole population of the meta-heuristic algorithms, it suffers from poor exploration capability to handle high-dimensional problems. This paper proposes a novel EPD operator to improve the search process. In other words, as the primary EPD mainly improves the fitness of the worst individuals in the population, and hence we name it the Fitness-Based EPD (FB-EPD), our proposed EPD mainly improves the diversity of the best individuals, and hence we name it the Diversity-Based EPD (DB-EPD). The proposed method is applied to the Grey Wolf Optimizer (GWO) and named DB-GWO-EPD. In this algorithm, the three most diversified individuals are first identified at each iteration, and then half of the best-fitted individuals are forced to be eliminated and repositioned around these diversified agents with equal probability. This process can free the merged best individuals located in a closed populated region and transfer them to the diversified and, thus, less-densely populated regions in the search space. This approach is frequently employed to make the search agents explore the whole search space. The proposed DB-GWO-EPD is tested on 13 high-dimensional and shifted classical benchmark functions as well as 29 test problems included in the CEC2017 test suite, and four constrained engineering problems. The results obtained by the proposal upon implemented on the classical test problems are compared to GWO, FB-GWO-EPD, and four other popular and newly proposed optimization algorithms, including Aquila Optimizer (AO), Flow Direction Algorithm (FDA), Arithmetic Optimization Algorithm (AOA), and Gradient-based Optimizer (GBO). The experiments demonstrate the significant superiority of the proposed algorithm when applied to a majority of the test functions, recommending the application of the proposed EPD operator to any other meta-heuristic whenever decided to ameliorate their performance.
Keywords
evolutionary population dynamics, Grey Wolf Optimizer, hybrid algorithms, meta-heuristic algorithms, swarm-intelligence techniques
Suggested Citation
Rezaei F, Safavi HR, Abd Elaziz M, Abualigah L, Mirjalili S, Gandomi AH. Diversity-Based Evolutionary Population Dynamics: A New Operator for Grey Wolf Optimizer. (2023). LAPSE:2023.1325
Author Affiliations
Rezaei F: Department of Civil Engineering, Isfahan University of Technology, Isfahan 8415683111, Iran [ORCID]
Safavi HR: Department of Civil Engineering, Isfahan University of Technology, Isfahan 8415683111, Iran
Abd Elaziz M: Department of Mathematics, Faculty of Science, Zagazig University, Zagazig 44519, Egypt; Faculty of Computer Science and Engineering, Galala University, Suez 435611, Egypt; Artificial Intelligence Research Center (AIRC), Ajman University, Ajman P.O. Box 3 [ORCID]
Abualigah L: Hourani Center for Applied Scientific Research, Al-Ahliyya Amman University, Amman 19328, Jordan; Prince Hussein Bin Abdullah College for Information Technology, Al Al-Bayt University, Mafraq 130040, Jordan; Faculty of Information Technology, Middle East [ORCID]
Mirjalili S: Centre for Artificial Intelligence Research and Optimisation, Torrens University Australia, Brisbane, QLD 4006, Australia; YFL (Yonsei Frontier Lab), Yonsei University, Seoul 03722, Republic of Korea [ORCID]
Gandomi AH: Faculty of Engineering & Information Technology, University of Technology Sydney, Ultimo, NSW 2007, Australia; University Research and Innovation Center (EKIK), Óbuda University, 1034 Budapest, Hungary [ORCID]
Journal Name
Processes
Volume
10
Issue
12
First Page
2615
Year
2022
Publication Date
2022-12-06
ISSN
2227-9717
Version Comments
Original Submission
Other Meta
PII: pr10122615, Publication Type: Journal Article
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LAPSE:2023.1325
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https://doi.org/10.3390/pr10122615
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