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海洋捕食者算法:综述

Marine Predators Algorithm: A Review.

作者信息

Al-Betar Mohammed Azmi, Awadallah Mohammed A, Makhadmeh Sharif Naser, Alyasseri Zaid Abdi Alkareem, Al-Naymat Ghazi, Mirjalili Seyedali

机构信息

Artificial Intelligence Research Center (AIRC), College of Engineering and Information Technology, Ajman University, Ajman, United Arab Emirates.

Department of Information Technology, Al-Huson University College, Al-Balqa Applied University, Al-Huson, Irbid, Jordan.

出版信息

Arch Comput Methods Eng. 2023;30(5):3405-3435. doi: 10.1007/s11831-023-09912-1. Epub 2023 Apr 19.

Abstract

Marine Predators Algorithm (MPA) is a recent nature-inspired optimizer stemmed from widespread foraging mechanisms based on Lévy and Brownian movements in ocean predators. Due to its superb features, such as derivative-free, parameter-less, easy-to-use, flexible, and simplicity, MPA is quickly evolved for a wide range of optimization problems in a short period. Therefore, its impressive characteristics inspire this review to analyze and discuss the primary MPA research studies established. In this review paper, the growth of the MPA is analyzed based on 102 research papers to show its powerful performance. The MPA inspirations and its theoretical concepts are also illustrated, focusing on its convergence behaviour. Thereafter, the MPA versions suggested improving the MPA behaviour on connecting the search space shape of real-world optimization problems are analyzed. A plethora and diverse optimization applications have been addressed, relying on MPA as the main solver, which is also described and organized. In addition, a critical discussion about the convergence behaviour and the main limitation of MPA is given. The review is end-up highlighting the main findings of this survey and suggests some possible MPA-related improvements and extensions that can be carried out in the future.

摘要

海洋捕食者算法(MPA)是一种近期受自然启发的优化器,它源于基于海洋捕食者的 Lévy 运动和布朗运动的广泛觅食机制。由于其具有诸如无需导数、无需参数、易于使用、灵活且简单等卓越特性,MPA 在短时间内迅速发展以适用于广泛的优化问题。因此,其令人印象深刻的特性促使本综述对已开展的主要 MPA 研究进行分析和讨论。在这篇综述论文中,基于 102 篇研究论文分析了 MPA 的发展情况,以展示其强大的性能。还阐述了 MPA 的灵感来源及其理论概念,重点关注其收敛行为。此后,分析了为改进 MPA 在连接实际优化问题搜索空间形状方面的行为而提出的 MPA 版本。还介绍并整理了大量以 MPA 作为主要求解器的多样优化应用。此外,对 MPA 的收敛行为和主要局限性进行了批判性讨论。综述最后强调了本次调查的主要发现,并提出了一些未来可能进行的与 MPA 相关的改进和扩展建议。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/706d/10115392/63cd5766c674/11831_2023_9912_Fig1_HTML.jpg

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