A review of intelligent optimization algorithm applied to unmanned aerial vehicle swarm search task

Zhu Qiming, Wu Husheng, Fu Zhaowang
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引用次数: 1

Abstract

Collaborative search is one of the key application fields of UAV swarm, Efficient and accurate algorithm is very important to complete the task of UAV swarm search, and the dynamic and real-time uncertainty of unmanned aerial vehicle swarm search task makes the problem very difficult. Therefore, in the past few years, a large number of scholars have shown strong interest in the problem of UAV swarm search task. With the rapid development of computer technology and Intelligent optimization algorithm, many Intelligent optimization algorithm have been proposed to solve this problem. However, the research on cooperative control and search algorithm is still not comprehensive, and there is a lack of induction and summary of recent research results. The purpose of this paper is to introduce the mathematical model of the search task and give a comprehensive review of the intelligence algorithms used in the swarm search task in recent years and their improvement. In addition, the results and efficiency of each algorithm to solve UAV search tasks are compared, and the advantages and disadvantages of different swarm intelligence algorithms applied to UAV swarm search tasks are summarized and summarized, so as to provide useful reference for UAV swarm to complete search tasks in the future.
智能优化算法在无人机群搜索任务中的应用综述
协同搜索是无人机群的关键应用领域之一,高效、准确的算法对完成无人机群搜索任务至关重要,而无人机群搜索任务的动态性和实时性的不确定性使得协同搜索问题变得非常困难。因此,在过去的几年里,大量的学者对无人机群搜索任务问题表现出浓厚的兴趣。随着计算机技术和智能优化算法的快速发展,人们提出了许多智能优化算法来解决这一问题。然而,对于协同控制和搜索算法的研究还不够全面,缺乏对近期研究成果的归纳和总结。本文的目的是介绍搜索任务的数学模型,并对近年来用于群体搜索任务的智能算法及其改进进行综合评述。此外,对各算法求解无人机搜索任务的结果和效率进行了比较,并对应用于无人机群搜索任务的不同群智能算法的优缺点进行了归纳和总结,为今后无人机群完成搜索任务提供有益的参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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