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An Advanced Bald Eagle Search Algorithm for Image Enhancement
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作者 Pei Hu Yibo Han Jeng-Shyang Pan 《Computers, Materials & Continua》 2025年第3期4485-4501,共17页
Image enhancement utilizes intensity transformation functions to maximize the information content of enhanced images.This paper approaches the topic as an optimization problem and uses the bald eagle search(BES)algori... Image enhancement utilizes intensity transformation functions to maximize the information content of enhanced images.This paper approaches the topic as an optimization problem and uses the bald eagle search(BES)algorithm to achieve optimal results.In our proposed model,gamma correction and Retinex address color cast issues and enhance image edges and details.The final enhanced image is obtained through color balancing.The BES algorithm seeks the optimal solution through the selection,search,and swooping stages.However,it is prone to getting stuck in local optima and converges slowly.To overcome these limitations,we propose an improved BES algorithm(ABES)with enhanced population learning,position updates,and control parameters.ABES is employed to optimize the core parameters of gamma correction and Retinex to improve image quality,and the maximization of information entropy is utilized as the objective function.Real benchmark images are collected to validate its performance.Experimental results demonstrate that ABES outperforms the existing image enhancement methods,including the flower pollination algorithm,the chimp optimization algorithm,particle swarm optimization,and BES,in terms of information entropy,peak signal-to-noise ratio(PSNR),structural similarity index(SSIM),and patch-based contrast quality index(PCQI).ABES demonstrates superior performance both qualitatively and quantitatively,and it helps enhance prominent features and contrast in the images while maintaining the natural appearance of the original images. 展开更多
关键词 Image enhancement gamma correction RETINEX bald eagle search algorithm
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Energy Optimization Strategy for Reconfigurable Distribution Network with High Renewable Penetration Based on Bald Eagle Search Algorithm
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作者 Jian Wang Hui Qi +2 位作者 Lingyi Ji Zhengya Tang Hui Qian 《Energy Engineering》 2025年第11期4635-4651,共17页
This paper proposes a cost-optimal energy management strategy for reconfigurable distribution networks with high penetration of renewable generation.The proposed strategy accounts for renewable generation costs,mainte... This paper proposes a cost-optimal energy management strategy for reconfigurable distribution networks with high penetration of renewable generation.The proposed strategy accounts for renewable generation costs,maintenance and operating expenses of energy storage systems,diesel generator operational costs,typical daily load profiles,and power balance constraints.A penalty term for power backflow is incorporated into the objective function to discourage undesirable reverse flows.The Bald Eagle Search(BES)meta-heuristic is adopted to solve the resulting constrained optimization problem.Numerical simulations under multiple load scenarios demonstrate that the proposed method effectively reduces operating cost while preventing power backflow and maintaining secure operation of the distribution network. 展开更多
关键词 Reconfigurable distribution networks energy optimization management bald eagle search algorithm
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baldness的委婉说法
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作者 刘文革 《大学英语》 2003年第8期39-39,共1页
英语国家的禁忌范围很广泛,主要有死亡、两性关系、某些生理功能(上厕所、例假)、年老等等。这些社会禁忌(social taboo)反映在语言上便是禁忌语。委婉语的使用是避开禁忌的有效途径。还有一种禁忌是个人禁忌(per-sonal taboo),如某些... 英语国家的禁忌范围很广泛,主要有死亡、两性关系、某些生理功能(上厕所、例假)、年老等等。这些社会禁忌(social taboo)反映在语言上便是禁忌语。委婉语的使用是避开禁忌的有效途径。还有一种禁忌是个人禁忌(per-sonal taboo),如某些个人缺陷——“秃顶”(baldness)。 展开更多
关键词 baldNESS 委婉说法 英文 习语 委婉语 个人禁忌
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Mercury concentrations in blood and feathers of nestling Bald Eagles in coastal and inland Virginia 被引量:2
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作者 David E.Kramar Bill Carstensen +1 位作者 Steve Prisley Jim Campbell 《Avian Research》 CSCD 2019年第1期36-42,共7页
Background:Mercury(Hg) and methylmercury are widely considered significant issues for wildlife,and in particular,piscivorous birds due to their widespread availability and neurotoxic properties.Whereas a substantial n... Background:Mercury(Hg) and methylmercury are widely considered significant issues for wildlife,and in particular,piscivorous birds due to their widespread availability and neurotoxic properties.Whereas a substantial number of studies of Hg contamination of Bald Eagles(Haliaeetus leucocephalus) have been conducted throughout the east coast of the United States,little has been done that directly addresses Hg contamination in Bald Eagles in Virginia,particularly the inland population.Methods:We collected blood and feather samples from nestling Bald Eagles in the coastal plain,piedmont,and western regions of Virginia in an effort to determine which areas of the state were more likely to contain populations showing evidence of Hg toxicity.We analyzed the samples for total Hg using a Milestone DMA-80.Results:Samples collected from individuals located in the coastal region exhibited low concentrations of Hg compared to those further inland located on freshwater rivers and reservoirs.Samples collected from the inland population exhibited levels in some areas that are approaching what may be considered to be sub-lethal to avian health(blood:mean 0.324 mg/kg,SE = 0.13,range = 0.06-0.97 mg/kg;feather:mean = 8.433 mg/kg,SE = 0.3,range = 3.811-21.14 mg/kg).Conclusions:Even after accounting for known point-sources of Hg,the inland eagle population in Virginia is susceptible to concentrations of Hg that are significantly higher than their coastal counterparts.Moreover,several locations besides those currently known to be impacted by point-sources are exhibiting concentrations that are approaching a sub-lethal level. 展开更多
关键词 bald EAGLE Haliaeetus leucocephalus MERCURY Methyl-mercury VIRGINIA
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An Improved Bald Eagle Search Algorithm with Cauchy Mutation and Adaptive Weight Factor for Engineering Optimization 被引量:2
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作者 Wenchuan Wang Weican Tian +3 位作者 Kwok-wing Chau Yiming Xue Lei Xu Hongfei Zang 《Computer Modeling in Engineering & Sciences》 SCIE EI 2023年第8期1603-1642,共40页
The Bald Eagle Search algorithm(BES)is an emerging meta-heuristic algorithm.The algorithm simulates the hunting behavior of eagles,and obtains an optimal solution through three stages,namely selection stage,search sta... The Bald Eagle Search algorithm(BES)is an emerging meta-heuristic algorithm.The algorithm simulates the hunting behavior of eagles,and obtains an optimal solution through three stages,namely selection stage,search stage and swooping stage.However,BES tends to drop-in local optimization and the maximum value of search space needs to be improved.To fill this research gap,we propose an improved bald eagle algorithm(CABES)that integrates Cauchy mutation and adaptive optimization to improve the performance of BES from local optima.Firstly,CABES introduces the Cauchy mutation strategy to adjust the step size of the selection stage,to select a better search range.Secondly,in the search stage,CABES updates the search position update formula by an adaptive weight factor to further promote the local optimization capability of BES.To verify the performance of CABES,the benchmark function of CEC2017 is used to simulate the algorithm.The findings of the tests are compared to those of the Particle Swarm Optimization algorithm(PSO),Whale Optimization Algorithm(WOA)and Archimedes Algorithm(AOA).The experimental results show that CABES can provide good exploration and development capabilities,and it has strong competitiveness in testing algorithms.Finally,CABES is applied to four constrained engineering problems and a groundwater engineeringmodel,which further verifies the effectiveness and efficiency of CABES in practical engineering problems. 展开更多
关键词 bald eagle search algorithm cauchymutation adaptive weight factor CEC2017 benchmark functions engineering optimization problems
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Bald Eagle Search Optimization Algorithm Combined with Spherical Random Shrinkage Mechanism and Its Application 被引量:1
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作者 Wenyan Guo Zhuolin Hou +2 位作者 Fang Dai Xiaoxia Wang Yufan Qiang 《Journal of Bionic Engineering》 SCIE EI CSCD 2024年第1期572-605,共34页
Over the last two decades,stochastic optimization algorithms have proved to be a very promising approach to solving a variety of complex optimization problems.Bald eagle search optimization(BES)as a new stochastic opt... Over the last two decades,stochastic optimization algorithms have proved to be a very promising approach to solving a variety of complex optimization problems.Bald eagle search optimization(BES)as a new stochastic optimization algorithm with fast convergence speed has the ability of prominent optimization and the defect of collapsing in the local best.To avoid BES collapse at local optima,inspired by the fact that the volume of the sphere is the largest when the surface area is certain,an improved bald eagle search optimization algorithm(INMBES)integrating the random shrinkage mechanism of the sphere is proposed.Firstly,the INMBES embeds spherical coordinates to design a more accurate parameter update method to modify the coverage and dispersion of the population.Secondly,the population splits into elite and non-elite groups and the Bernoulli chaos is applied to elite group to tap around potential solutions of the INMBES.The non-elite group is redistributed again and the Nelder-Mead simplex strategy is applied to each group to accelerate the evolution of the worst individual and the convergence process of the INMBES.The results of Friedman and Wilcoxon rank sum tests of CEC2017 in 10,30,50,and 100 dimensions numerical optimization confirm that the INMBES has superior performance in convergence accuracy and avoiding falling into local optimization compared with other potential improved algorithms but inferior to the champion algorithm and ranking third.The three engineering constraint optimization problems and 26 real world problems and the problem of extracting the best feature subset by encapsulated feature selection method verify that the INMBES’s performance ranks first and has achieved satisfactory accuracy in solving practical problems. 展开更多
关键词 bald eagle search optimization algorithm Spherical coordinates Chaotic variation Simplex method Encapsulated feature selection
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Optimal FOPID Controllers for LFC Including Renewables by Bald Eagle Optimizer 被引量:1
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作者 Ahmed M.Agwa Mohamed Abdeen Shaaban M.Shaaban 《Computers, Materials & Continua》 SCIE EI 2022年第12期5525-5541,共17页
In this study,a bald eagle optimizer(BEO)is used to get optimal parameters of the fractional-order proportional-integral-derivative(FOPID)controller for load frequency control(LFC).SinceBEOtakes only a very short time... In this study,a bald eagle optimizer(BEO)is used to get optimal parameters of the fractional-order proportional-integral-derivative(FOPID)controller for load frequency control(LFC).SinceBEOtakes only a very short time in finding the optimal solution,it is selected for designing the FOPID controller that improves the system stability and maintains the frequency within a satisfactory range at different loads.Simulations and demonstrations are carried out using MATLAB-R2020b.The performance of the BEOFOPID controller is evaluated using a two-zone interlinked power system at different loads and under uncertainty of wind and solar energies.The robustness of the BEO-FOPID controller is examined by testing its performance under varying system time constants.The results obtained by the BEOFOPID controller are compared with those obtained by BEO-PID and PID controllers based on recent metaheuristics optimization algorithms,namely the sine-cosine approach,Jaya approach,grey wolf optimizer,genetic algorithm,bacteria foraging optimizer,and equilibrium optimization algorithm.The results confirm that the BEO-FOPID controller obtains the finest result,with the lowest frequency deviation.The results also confirm that the BEOFOPID controller is stable and robust at different loads,under varying system time constants,and under uncertainty of wind and solar energies. 展开更多
关键词 Fractional order PID control load frequency control renewable energy bald eagle optimizer
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Solving Fuel-Based Unit Commitment Problem Using Improved Binary Bald Eagle Search
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作者 Sharaz Ali Mohammed Azmi Al-Betar +1 位作者 Mohamed Nasor Mohammed A.Awadallah 《Journal of Bionic Engineering》 CSCD 2024年第6期3098-3122,共25页
The Unit Commitment Problem(UCP)corresponds to the planning of power generation schedules.The objective of the fuel-based unit commitment problem is to determine the optimal schedule of power generators needed to meet... The Unit Commitment Problem(UCP)corresponds to the planning of power generation schedules.The objective of the fuel-based unit commitment problem is to determine the optimal schedule of power generators needed to meet the power demand,which also minimizes the total operating cost while adhering to different constraints such as power generation limits,unit startup,and shutdown times.In this paper,four different binary variants of the Bald Eagle Search(BES)algorithm,were introduced,which used two variants using S-shape,U-shape,and V-shape transfer functions.In addition,the best-performing variant(using an S-shape transfer function)was selected and improved further by incorporating two binary operators:swap-window and window-mutation.This variation is labeled Improved Binary Bald Eagle Search(IBBESS2).All five variants of the proposed algorithm were successfully adopted to solve the fuel-based unit commitment problem using seven test cases of 4-,10-,20-,40-,60-,80-,and 100-unit.For comparative evaluation,34 comparative methods from existing literature were compared,in which IBBESS2 achieved competitive scores against other optimization techniques.In other words,the proposed IBBESS2 performs better than all other competitors by achieving the best average scores in 20-,40-,60-,80-,and 100-unit problems.Furthermore,IBBESS2 demonstrated quicker convergence to an optimal solution than other algorithms,especially in large-scale unit commitment problems.The Friedman statistical test further validates the results,where the proposed IBBESS2 is ranked the best.In conclusion,the proposed IBBESS2 can be considered a powerful method for solving large-scale UCP and other related problems. 展开更多
关键词 Swarm intelligence bald eagle search Unit commitment problem OPTIMIZATION
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基于CEEMD-IBES-ELM的水轮机尾水管压力脉动预测
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作者 孙彦飞 曾云 +2 位作者 钱晶 马伟栋 张欢 《排灌机械工程学报》 北大核心 2026年第3期276-283,共8页
为有效预测水轮机尾水管的压力脉动并采取相应措施以减小压力脉动,提出了一种混合预测模型,该模型基于互补集成经验模态分解(CEEMD)、改进秃鹰搜索算法(IBES)和极限学习机(ELM)来预测尾水管的压力脉动信号.首先基于CEEMD分解将非平稳的... 为有效预测水轮机尾水管的压力脉动并采取相应措施以减小压力脉动,提出了一种混合预测模型,该模型基于互补集成经验模态分解(CEEMD)、改进秃鹰搜索算法(IBES)和极限学习机(ELM)来预测尾水管的压力脉动信号.首先基于CEEMD分解将非平稳的水轮机尾水管压力脉动信号拆分为多个相对稳定的子模态部分.然后分别将分解后的子模态数据输入到ELM模型中进行深入的训练和预测分析,通过IBES对初始的权重和阈值进行优化处理.最终对每个子模态的预测结果输出进行叠加处理,从而得到了水轮机尾水管压力脉动信号的最终预测结果.仿真结果显示,提出的CEEMD-IBES-ELM预测方法能以相对较低的重构误差减少预测过程的复杂性.此外,与其他模型相比,该模型在预测的准确性和稳定性上都展现出明显的优越性,具有很好的应用潜力. 展开更多
关键词 尾水管 互补集成经验模态分解 秃鹰搜索算法 极限学习机 压力脉动预测
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Prediction of network public opinion based on bald eagle algorithm optimized radial basis function neural network 被引量:1
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作者 Jialiang Xie Shanli Zhang Ling Lin 《International Journal of Intelligent Computing and Cybernetics》 EI 2022年第2期184-200,共17页
Purpose-In the new era of highly developed Internet information,the prediction of the development trend of network public opinion has a very important reference significance for monitoring and control of public opinio... Purpose-In the new era of highly developed Internet information,the prediction of the development trend of network public opinion has a very important reference significance for monitoring and control of public opinion by relevant government departments.Design/methodology/approach-Aiming at the complex and nonlinear characteristics of the network public opinion,considering the accuracy and stability of the applicable model,a network public opinion prediction model based on the bald eagle algorithm optimized radial basis function neural network(BES-RBF)is proposed.Empirical research is conducted with Baidu indexes such as“COVID-19”,“Winter Olympic Games”,“The 100th Anniversary of the Founding of the Party”and“Aerospace”as samples of network public opinion.Findings-The experimental results show that the model proposed in this paper can better describe the development trend of different network public opinion information,has good stability in predictive performance and can provide a good decision-making reference for government public opinion control departments.Originality/value-A method for optimizing the central value,weight,width and other parameters of the radial basis function neural network with the bald eagle algorithm is given,and it is applied to network public opinion trend prediction.The example verifies that the prediction algorithm has higher accuracy and better stability. 展开更多
关键词 Network public opinion COVID-19 bald eagle algorithm RBF neural network
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基于信任感知元启发式的IIoT安全路由优化研究
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作者 刘晶 《微型电脑应用》 2026年第1期68-71,共4页
对于工业物联网(IIoT)环境中的能量效率和安全性,提出一种基于信任感知多目标元启发式优化的安全聚类与路由规划(TAMOMO-SCRP)模型。所提出的模型采用秃鹰搜索(BES)优化算法进行聚类和路由优化,结合信任级别、通信成本、剩余能量和节点... 对于工业物联网(IIoT)环境中的能量效率和安全性,提出一种基于信任感知多目标元启发式优化的安全聚类与路由规划(TAMOMO-SCRP)模型。所提出的模型采用秃鹰搜索(BES)优化算法进行聚类和路由优化,结合信任级别、通信成本、剩余能量和节点密度等参数设计聚类目标函数,并基于队列长度和链路质量进行路由选择。通过与现有方法的比较实验,TAMOMO-SCRP在网络生命周期、半网络死亡时间、稳定期等指标上均优于其他方法。具体而言,TAMOMO-SCRP的网络生命周期达到39 451轮,半网络死亡时间为25 950轮,稳定期为8000轮,显著提高了IIoT环境的能量效率和安全性。 展开更多
关键词 工业物联网 聚类 秃鹰搜索优化算法 信任感知协议 路由规划
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基于准反射学习和多项式变异的秃鹰搜索算法
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作者 张大明 丁俊杰 +1 位作者 赵彦清 徐嘉庆 《广西科学》 北大核心 2026年第1期201-212,共12页
针对秃鹰搜索算法(Bald Eagle Search algorithm,BES)存在收敛速度慢、收敛精度低和易陷入局部最优等问题,提出一种基于准反射学习和多项式变异的秃鹰搜索算法(Bald Eagle Search algorithm based on Quasi-reflection-based learning m... 针对秃鹰搜索算法(Bald Eagle Search algorithm,BES)存在收敛速度慢、收敛精度低和易陷入局部最优等问题,提出一种基于准反射学习和多项式变异的秃鹰搜索算法(Bald Eagle Search algorithm based on Quasi-reflection-based learning mechanism and Polynomial mutation,QPBES)。QPBES在种群初始化阶段引入准反射学习机制(Quasi-Reflection-Based Learning mechanism,QRBL)以增加初始种群多样性,在种群位置更新阶段再次引入准反射学习机制以提高算法收敛速度。QPBES引入改进的自适应惯性权重方法以提高算法局部搜索能力,并在最佳秃鹰位置引入多项式变异算子以提高算法跳出局部最优的能力。在23个基准测试函数上QPBES与其他优化算法的对比实验结果表明,QPBES具有更快的收敛速度和更高的寻优精度,并且在求解多峰函数问题上表现优异。 展开更多
关键词 智能优化算法 秃鹰搜索算法 准反射学习 多项式变异 自适应惯性权重
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基于IBES-ELM的无人扫雷车故障诊断方法
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作者 刘芳 李英顺 +2 位作者 郭占男 匡博琪 郭丽楠 《兵工自动化》 北大核心 2026年第3期15-21,共7页
针对无人扫雷车故障检测困难、维修经验不足的问题,提出一种检测速度快、诊断准确率高的新方法。以极限学习机(extreme learning machine,ELM)算法为基础,引入Lévy飞行策略和模拟退火机制,针对秃鹰搜索(bald eagle search,BES)算... 针对无人扫雷车故障检测困难、维修经验不足的问题,提出一种检测速度快、诊断准确率高的新方法。以极限学习机(extreme learning machine,ELM)算法为基础,引入Lévy飞行策略和模拟退火机制,针对秃鹰搜索(bald eagle search,BES)算法进行优化,采用改进秃鹰搜索(improved bald eagle search,IBES)算法对极限学习网络参数进行寻优。建立基于改进秃鹰搜索算法优化极限学习机的无人扫雷车动力系统故障诊断模型。实验结果表明:故障诊断准确率可达到98.18%,明显高于改进前模型和其他方法,具有理论价值和工程实践意义。 展开更多
关键词 故障诊断 无人扫雷车 极限学习机 秃鹰搜索算法 模拟退火算法 Lévy飞行策略
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基于IBES-XGBoost的矿井巷道摩擦阻力因数预测模型
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作者 闫振国 周勃兴 +4 位作者 王延平 秦志鑫 张嘉珞 何世龙 袁林雨 《工矿自动化》 北大核心 2026年第3期123-132,共10页
针对现有基于机器学习的矿井巷道摩擦阻力因数α预测算法存在欠拟合或过拟合、预测精度不高等问题,提出一种集成反向学习初始化、混沌自适应参数、动态自适应变异和混沌局部搜索策略的改进秃鹰搜索(IBES)算法,采用该算法对极限梯度提升... 针对现有基于机器学习的矿井巷道摩擦阻力因数α预测算法存在欠拟合或过拟合、预测精度不高等问题,提出一种集成反向学习初始化、混沌自适应参数、动态自适应变异和混沌局部搜索策略的改进秃鹰搜索(IBES)算法,采用该算法对极限梯度提升树(XGBoost)模型的关键超参数进行自适应寻优,在此基础上以多维度巷道几何参数及结构类别信息为输入特征,以最小化预测均方根误差(RMSE)为目标函数,构建了矿井巷道α预测模型(IBES-XGBoost模型)。通过标准测试函数测试验证了IBES算法较原始秃鹰搜索算法及其他元启发式算法在求解精度、收敛速度和稳定性方面均表现出显著优势。基于陕北地区多个矿井现场实测获得的涵盖4种典型断面形状与8种支护方式等复杂工况的260组样本构建数据集,按支护类型分层抽样并按8∶2划分训练集与测试集,通过5折交叉验证完成超参数寻优。实验结果表明:IBES-XGBoost模型对测试集的预测RMSE为0.001232,平均绝对误差(MAE)为0.000868,决定系数(R^(2))为0.985426,优于所有对比模型,且与次优的BES-XGBoost模型相比,其RMSE和MAE分别降低了49.94%和49.09%,验证了IBES-XGBoost模型具有极高的预测准确率和鲁棒性。 展开更多
关键词 矿井通风 巷道摩擦阻力因数 极限梯度提升树 改进秃鹰搜索算法 超参数寻优 预测模型
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THE BALD TRUTH——ADD HAIR LOSS TO THE STRESSES FACING MILLENNIALS
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《The World of Chinese》 2019年第1期6-7,共2页
Several weeks after starting his job with tech company Tencent,247-year-old Mr.Guo identified a problem:He was losing his hair.He now fears becoming as bald as colleagues who are decades his senior.
关键词 THE bald TRUTH ADD HAIR LOSS STRESSES FACING MILLENNIALS
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”Das Wunder ist bald zu Ende“
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作者 Pan Yue, 44, gehrt zu den Reformern in der Pekinger Führung. Bevor er Vizechef der Umweltbehrde Sepa2 wurde, arbeitete er als Journalist. 《德语学习》 2005年第5期37-41,共5页
Der Vizeminister der staatlichen Umweltbehrde, Pan Yue, überdie Risiken des Wirtschaftswachstums und die gravierenden1kologischen Schden im
关键词 der Das Wunder ist bald zu Ende
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基于秃鹰算法逼近实测线路的智能调线调坡方法 被引量:1
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作者 杨文茂 卓建成 +1 位作者 林红松 余浩伟 《铁道标准设计》 北大核心 2025年第9期16-21,47,共7页
传统的地铁调线调坡过程主要依赖人工操作,其效率较低、易出纰漏,且难以得到最优的线路调整方案,亟需一种智能化、高效率的调线调坡方法。针对这一问题,提出一种基于秃鹰算法逼近实测线路的智能调线调坡方法,该方法将调线调坡工作抽象... 传统的地铁调线调坡过程主要依赖人工操作,其效率较低、易出纰漏,且难以得到最优的线路调整方案,亟需一种智能化、高效率的调线调坡方法。针对这一问题,提出一种基于秃鹰算法逼近实测线路的智能调线调坡方法,该方法将调线调坡工作抽象为使“设计线路”尽可能接近“实测线路”的优化逼近过程,进而采用秃鹰算法实现对“设计线路”参数的优化调整。其主要步骤如下:(1)基于隧道(或桥梁)断面测量数据构建一条虚拟的“实测线路”,并推导得出相应的“实测线路”坐标计算公式;(2)基于总体侵限及局部侵限两方面指标,构造综合偏差函数,同时引入调节系数对各侵限指标进行权重调节,以满足不同类型线下结构的差异化调坡调线需求;(3)以综合偏差函数值最小为目标,采用秃鹰算法对设计线路参数进行优化,求解得出最接近于“实测线路”的线路方案。应用该方法对青岛地铁某侵限区段进行线路平面优化设计,优化后最大侵限值减小43.2%,侵限点总个数减少52.2%,满足工程需求,且计算耗时仅为24.02 s。研究成果可直接应用于地铁侵限区段的线路优化设计过程中,以提高调坡调线的效率和质量。 展开更多
关键词 地铁 调线调坡 侵限 综合偏差函数 秃鹰算法
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基于储能蓄电池和柴油发电机的微电网经济优化运行策略 被引量:1
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作者 李战明 王妮儿 《兰州理工大学学报》 北大核心 2025年第4期72-80,共9页
为提高风-光-柴-储独立运行微电网的经济效益,提出一种基于储能蓄电池和柴油发电机两种主控电源动态交替运行的独立微电网经济优化运行策略.首先,基于可再生能源出力预测、负荷需求预测等基础数据,选择合理的运行模式,建立了一种包含燃... 为提高风-光-柴-储独立运行微电网的经济效益,提出一种基于储能蓄电池和柴油发电机两种主控电源动态交替运行的独立微电网经济优化运行策略.首先,基于可再生能源出力预测、负荷需求预测等基础数据,选择合理的运行模式,建立了一种包含燃料消耗成本、系统运行与维护成本等因素的最小化系统综合运行成本目标.其次,构建结合功率平衡约束、分布式发电单元运行约束等条件下的独立微电网经济运行优化模型,并提出一种基于秃鹰搜索算法(BES)的模型求解方案.最后,通过算例分析验证了所提出的优化运行策略可有效提高微电网系统的经济效益. 展开更多
关键词 微电网 运行策略 经济优化 秃鹰搜索算法
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考虑价格型需求响应的主动配电网优化调度 被引量:1
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作者 袁建华 廖方帆 +1 位作者 皮志勇 刘闯 《电力学报》 2025年第1期41-49,共9页
为了进一步提升主动配电网(active distribution network,ADN)的经济性,以ADN日最低运行成本为目标函数,同时考虑价格型需求响应对ADN调度的影响,构建了主动配电网调度模型。利用Tent混沌方程和柯西突变算子对秃鹰搜索(bald eagle searc... 为了进一步提升主动配电网(active distribution network,ADN)的经济性,以ADN日最低运行成本为目标函数,同时考虑价格型需求响应对ADN调度的影响,构建了主动配电网调度模型。利用Tent混沌方程和柯西突变算子对秃鹰搜索(bald eagle search,BES)算法进行改进,使改进秃鹰搜索(improved bald eagle search,IBES)算法的优化效果得到改善。采用IBES算法对ADN调度模型进行求解,并利用改进IEEE节点系统搭建不同场景进行仿真分析。仿真结果表明,考虑需求响应时,负荷曲线峰谷差更小,需求响应使部分峰值负荷转移至低谷时段,实现了对负荷的削峰填谷,在需求响应的作用下,ADN日最低运行成本更小,经济性更好。 展开更多
关键词 主动配电网 调度 需求响应 改进秃鹰算法 运行成本
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基于改进HHO的水轮机空化信号降噪及特征提取
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作者 刘忠 刘圳 +2 位作者 邹淑云 周泽华 乔帅程 《噪声与振动控制》 北大核心 2025年第2期70-75,111,共7页
为对水轮机空化声发射信号进行降噪并提取其时频特征,提出一种基于改进哈里斯鹰算法(IHHO)和波动散布熵(FDE)的降噪和特征提取方法。首先,利用秃鹰搜索算法(BES)的螺旋搜索机制改进哈里斯鹰算法(HHO)的全局搜索阶段。然后,以散布熵差异... 为对水轮机空化声发射信号进行降噪并提取其时频特征,提出一种基于改进哈里斯鹰算法(IHHO)和波动散布熵(FDE)的降噪和特征提取方法。首先,利用秃鹰搜索算法(BES)的螺旋搜索机制改进哈里斯鹰算法(HHO)的全局搜索阶段。然后,以散布熵差异互相关系数为适应度函数,利用IHHO对VMD进行参数寻优,对信号进行最优VMD分解和相关系数阈值重构从而实现降噪。最后,提取其能量和波动散布熵特征,分析其随空化系数变化的关系。结果表明:相较于灰狼-布谷鸟(GWO-CS)和HHO算法,IHHO对VMD寻优的降噪效果更好;随着空化系数减小,声发射信号能量呈现先增加、再减小、再增加、再减小的趋势,波动散布熵值呈现先减小后增大的趋势。 展开更多
关键词 声学 水轮机 空化 声发射 降噪 哈里斯鹰优化算法 秃鹰搜索算法
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