An improved marine predators algorithm tuned data-driven multiple-node hormone regulation neuroendocrine-PID controller for multi-input–multi-output gantry crane system

IF 2.8 4区 工程技术 Q1 ACOUSTICS
M. Z. Mohd Tumari, Mohd Ashraf Ahmad, M. H. Suid, M. R. Ghazali, M. Tokhi
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引用次数: 1

Abstract

Conventionally, researchers have favored the model-based control scheme for controlling gantry crane systems. However, this method necessitates a substantial investment of time and resources in order to develop an accurate mathematical model of the complex crane system. Recognizing this challenge, the current paper introduces a novel data-driven control scheme that relies exclusively on input and output data. Undertaking a couple of modifications to the conventional marine predators algorithm (MPA), random average marine predators algorithm (RAMPA) with tunable adaptive coefficient to control the step size ( CF) has been proposed in this paper as an enhanced alternative towards fine-tuning data-driven multiple-node hormone regulation neuroendocrine-PID (MnHR-NEPID) controller parameters for the multi-input–multi-output (MIMO) gantry crane system. First modification involved a random average location calculation within the algorithm’s updating mechanism to solve the local optima issue. The second modification then introduced tunable CF that enhanced search capacity by enabling users’ resilience towards attaining an offsetting level of exploration and exploitation phases. Effectiveness of the proposed method is evaluated based on the convergence curve and statistical analysis of the fitness function, the total norms of error and input, Wilcoxon’s rank test, time response analysis, and robustness analysis under the influence of external disturbance. Comparative findings alongside other existing metaheuristic-based algorithms confirmed excellence of the proposed method through its superior performance against the conventional MPA, particle swarm optimization (PSO), grey wolf optimizer (GWO), moth-flame optimization (MFO), multi-verse optimizer (MVO), sine-cosine algorithm (SCA), salp-swarm algorithm (SSA), slime mould algorithm (SMA), flow direction algorithm (FDA), and the formally published adaptive safe experimentation dynamics (ASED)-based methods.
针对多输入多输出龙门吊系统,提出了一种改进的海洋捕食者算法调优数据驱动多节点激素调节神经内分泌pid控制器
传统上,研究人员倾向于基于模型的控制方案来控制龙门吊系统。然而,这种方法需要大量的时间和资源的投入,以建立一个精确的数学模型的复杂起重机系统。认识到这一挑战,本文介绍了一种新的数据驱动控制方案,该方案完全依赖于输入和输出数据。本文对传统的海洋捕食者算法(MPA)进行了一些改进,提出了一种具有可调自适应系数控制步长(CF)的随机平均海洋捕食者算法(RAMPA),作为多输入多输出(MIMO)龙门起重机系统中数据驱动的多节点激素调节神经内分泌- pid (MnHR-NEPID)控制器参数微调的增强替代方案。第一个改进是在算法的更新机制中进行随机平均位置计算,解决局部最优问题。第二个修改引入了可调的CF,通过使用户能够灵活地达到相应的探索和利用阶段,从而增强了搜索能力。基于适应度函数的收敛曲线和统计分析、误差和输入的总规范、Wilcoxon秩检验、时间响应分析和外部干扰影响下的鲁棒性分析,对所提出方法的有效性进行了评价。与其他现有的基于元启发式算法的比较结果证实了该方法的优越性,其优于传统的MPA、粒子群优化(PSO)、灰狼优化(GWO)、蛾焰优化(MFO)、多重空间优化(MVO)、正弦余弦算法(SCA)、海藻群算法(SSA)、黏菌算法(SMA)、水流方向算法(FDA)。以及正式发表的基于自适应安全实验动力学(ASED)的方法。
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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来源期刊
CiteScore
4.90
自引率
4.30%
发文量
98
审稿时长
15 weeks
期刊介绍: Journal of Low Frequency Noise, Vibration & Active Control is a peer-reviewed, open access journal, bringing together material which otherwise would be scattered. The journal is the cornerstone of the creation of a unified corpus of knowledge on the subject.
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