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Multi-platform collaborative MRC-PSO algorithm for anti-ship missile path planning
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作者 LIU Gang GUO Xinyuan +2 位作者 HUANG Dong chen kezhong LI Wu 《Journal of Systems Engineering and Electronics》 2025年第2期494-509,共16页
To solve the problem of multi-platform collaborative use in anti-ship missile (ASM) path planning, this paper pro-posed multi-operator real-time constraints particle swarm opti-mization (MRC-PSO) algorithm. MRC-PSO al... To solve the problem of multi-platform collaborative use in anti-ship missile (ASM) path planning, this paper pro-posed multi-operator real-time constraints particle swarm opti-mization (MRC-PSO) algorithm. MRC-PSO algorithm utilizes a semi-rasterization environment modeling technique and inte-grates the geometric gradient law of ASMs which distinguishes itself from other collaborative path planning algorithms by fully considering the coupling between collaborative paths. Then, MRC-PSO algorithm conducts chunked stepwise recursive evo-lution of particles while incorporating circumvent, coordination, and smoothing operators which facilitates local selection opti-mization of paths, gradually reducing algorithmic space, accele-rating convergence, and enhances path cooperativity. Simula-tion experiments comparing the MRC-PSO algorithm with the PSO algorithm, genetic algorithm and operational area cluster real-time restriction (OACRR)-PSO algorithm, which demon-strate that the MRC-PSO algorithm has a faster convergence speed, and the average number of iterations is reduced by approximately 75%. It also proves that it is equally effective in resolving complex scenarios involving multiple obstacles. More-over it effectively addresses the problem of path crossing and can better satisfy the requirements of multi-platform collabora-tive path planning. The experiments are conducted in three col-laborative operation modes, namely, three-to-two, three-to-three, and four-to-two, and the outcomes demonstrate that the algorithm possesses strong universality. 展开更多
关键词 anti-ship missiles multi-platform collaborative path planning particle swarm optimization(PSO)algorithm
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某小型地面无人作战平台控制手势识别方法研究 被引量:5
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作者 梅武松 陈科仲 李忠新 《南京理工大学学报》 CAS CSCD 北大核心 2022年第3期262-269,共8页
针对某小型地面无人作战平台控制手势识别率低的问题,该文提出了一种控制手势识别方法。首先,对控制手势的肌电图(EMG)信号进行预处理,提取平均绝对值、平均绝对值斜率、波长和方差4种特征构成特征集,输入支持向量机(SVM)中进行分类;然... 针对某小型地面无人作战平台控制手势识别率低的问题,该文提出了一种控制手势识别方法。首先,对控制手势的肌电图(EMG)信号进行预处理,提取平均绝对值、平均绝对值斜率、波长和方差4种特征构成特征集,输入支持向量机(SVM)中进行分类;然后,针对其中的相近手势引入了角速度信号和EMG信号特征融合的方法进行识别,并进行了手势控制地面无人作战平台的实验验证。结果表明,该文方法的识别率较传统Hudgins特征集识别方法提高了3.29%,在引入角速度信号后相近手势识别率提高了13%,手势整体识别率提高了5.56%。 展开更多
关键词 地面无人作战平台 手势识别 肌电图信号 支持向量机 角速度 特征融合
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