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Research Article | Open Access

An enhanced crossover strategy for the artificial lemming algorithm for engineering design optimization

Yan ZhongLi-Bin LiuXiongfa Mai( )Haiyan Luo
Center for Applied Mathematics of Guangxi, Nanning Normal University, Nanning 530100, China
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Abstract

To address the limitations of the artificial lemming algorithm (ALA) in convergence accuracy and premature convergence, this paper proposes an enhanced variant, the cross-strategy-integrated artificial lemming algorithm (CALA). Specifically, the CALA integrates a linear inertia weight strategy to balance exploration and exploitation, a historical best-guided strategy to enhance local search, and a crossover strategy to maintain population diversity. The proposed algorithm was evaluated on the IEEE CEC2017 and CEC2022 benchmark suites, achieving minimum Friedman mean ranks of 1.37 and 1.5, respectively, and outperforming several state-of-the-art algorithms in terms of accuracy and robustness. Furthermore, the CALA was successfully applied to constrained engineering design problems and a photovoltaic model parameter estimation task, demonstrating its effectiveness and practical applicability.

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Networks and Heterogeneous Media
Pages 1466-1508

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Cite this article:
Zhong Y, Liu L-B, Mai X, et al. An enhanced crossover strategy for the artificial lemming algorithm for engineering design optimization. Networks and Heterogeneous Media, 2025, 20(5): 1466-1508. https://doi.org/10.3934/nhm.2025063

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Received: 20 October 2025
Revised: 01 December 2025
Accepted: 15 December 2025
Published: 23 December 2025
©2025 the Author(s), licensee AIMS Press.

This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0)