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基于混沌宿主切换机制的?鱼优化算法
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作者 贾鹤鸣 力尚龙 +3 位作者 陈丽珍 刘庆鑫 吴迪 郑荣 《计算机应用》 CSCD 北大核心 2023年第6期1759-1767,共9页
鱼优化算法(ROA)的寻优过程包括依附宿主、经验攻击和宿主觅食3种模式,它的探索能力与开发能力较强;但原始算法通过经验攻击切换宿主,导致探索与开发之间平衡较差、收敛较慢且容易陷入局部最优。针对上述问题,提出了一种基于混沌宿主... 鱼优化算法(ROA)的寻优过程包括依附宿主、经验攻击和宿主觅食3种模式,它的探索能力与开发能力较强;但原始算法通过经验攻击切换宿主,导致探索与开发之间平衡较差、收敛较慢且容易陷入局部最优。针对上述问题,提出了一种基于混沌宿主切换机制的改进鱼优化算法(MROA)。首先,设计一种新的宿主切换机制,以更好地平衡探索和开发的能力;然后,为了使鱼初始宿主多样化,引入Tent混沌映射进行种群初始化,进一步优化算法的性能;最后,将MROA与原始ROA和爬行动物搜索算法(RSA)等6种算法在CEC2020测试函数上进行对比实验。分析实验结果可知,MROA求得的最优适应度值、平均适应度值和适应度值标准差分别比ROA、RSA、鲸鱼优化算法(WOA)、哈里斯鹰优化(HHO)算法、精子群优化(SSO)算法、正余弦算法(SCA)和乌燕鸥优化算法(STOA)平均提高了28%、33%和12%。基于CEC2020的测试结果表明,MROA具有良好的寻优能力、收敛能力和鲁棒性;同时,通过求解焊接梁设计问题和多片式离合器制动器设计问题,进一步验证了MROA在工程问题中的有效性。 展开更多
关键词 鱼优化算法 宿主切换机制 Tent混沌映射 基准函数测试 工程问题求解
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Research on Short-Term Electric Load Forecasting Using IWOA CNN-BiLSTM-TPA Model
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作者 MEI Tong-da SI Zhan-jun ZHANG Ying-xue 《印刷与数字媒体技术研究》 北大核心 2025年第1期179-187,共9页
Load forecasting is of great significance to the development of new power systems.With the advancement of smart grids,the integration and distribution of distributed renewable energy sources and power electronics devi... Load forecasting is of great significance to the development of new power systems.With the advancement of smart grids,the integration and distribution of distributed renewable energy sources and power electronics devices have made power load data increasingly complex and volatile.This places higher demands on the prediction and analysis of power loads.In order to improve the prediction accuracy of short-term power load,a CNN-BiLSTMTPA short-term power prediction model based on the Improved Whale Optimization Algorithm(IWOA)with mixed strategies was proposed.Firstly,the model combined the Convolutional Neural Network(CNN)with the Bidirectional Long Short-Term Memory Network(BiLSTM)to fully extract the spatio-temporal characteristics of the load data itself.Then,the Temporal Pattern Attention(TPA)mechanism was introduced into the CNN-BiLSTM model to automatically assign corresponding weights to the hidden states of the BiLSTM.This allowed the model to differentiate the importance of load sequences at different time intervals.At the same time,in order to solve the problem of the difficulties of selecting the parameters of the temporal model,and the poor global search ability of the whale algorithm,which is easy to fall into the local optimization,the whale algorithm(IWOA)was optimized by using the hybrid strategy of Tent chaos mapping and Levy flight strategy,so as to better search the parameters of the model.In this experiment,the real load data of a region in Zhejiang was taken as an example to analyze,and the prediction accuracy(R2)of the proposed method reached 98.83%.Compared with the prediction models such as BP,WOA-CNN-BiLSTM,SSA-CNN-BiLSTM,CNN-BiGRU-Attention,etc.,the experimental results showed that the model proposed in this study has a higher prediction accuracy. 展开更多
关键词 Whale Optimization Algorithm Convolutional Neural Network Long Short-Term Memory Temporal Pattern Attention Power load forecasting
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Optimal variable structure control with sliding modes for unstable processes 被引量:4
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作者 KUMAR Satyendra AJMERI Moina 《Journal of Central South University》 SCIE EI CAS CSCD 2021年第10期3147-3158,共12页
In this work,a variable structure control(VSC)technique is proposed to achieve satisfactory robustness for unstable processes.Optimal values of unknown parameters of VSC are obtained using Whale optimization algorithm... In this work,a variable structure control(VSC)technique is proposed to achieve satisfactory robustness for unstable processes.Optimal values of unknown parameters of VSC are obtained using Whale optimization algorithm which was recently reported in literature.Stability analysis has been done to verify the suitability of the proposed structure for industrial processes.The proposed control strategy is applied to three different types of unstable processes including non-minimum phase and nonlinear systems.A comparative study ensures that the proposed scheme gives superior performance over the recently reported VSC system.Furthermore,the proposed method gives satisfactory results for a cart inverted pendulum system in the presence of external disturbance and noise. 展开更多
关键词 variable structure control sliding mode control Whale optimization algorithm ROBUSTNESS non-linear system
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