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Membrane-inspired quantum shuffled frog leaping algorithm for spectrum allocation 被引量:2
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作者 Hongyuan Gao Jinlong Cao 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2012年第5期679-688,共10页
To solve discrete optimization difficulty of the spectrum allocation problem,a membrane-inspired quantum shuffled frog leaping(MQSFL) algorithm is proposed.The proposed MQSFL algorithm applies the theory of membrane... To solve discrete optimization difficulty of the spectrum allocation problem,a membrane-inspired quantum shuffled frog leaping(MQSFL) algorithm is proposed.The proposed MQSFL algorithm applies the theory of membrane computing and quantum computing to the shuffled frog leaping algorithm,which is an effective discrete optimization algorithm.Then the proposed MQSFL algorithm is used to solve the spectrum allocation problem of cognitive radio systems.By hybridizing the quantum frog colony optimization and membrane computing,the quantum state and observation state of the quantum frogs can be well evolved within the membrane structure.The novel spectrum allocation algorithm can search the global optimal solution within a reasonable computation time.Simulation results for three utility functions of a cognitive radio system are provided to show that the MQSFL spectrum allocation method is superior to some previous spectrum allocation algorithms based on intelligence computing. 展开更多
关键词 quantum shuffled frog leaping algorithm membrane computing spectrum allocation cognitive radio
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Improved Shuffled Frog Leaping Algorithm Optimizing Integral Separated PID Control for Unmanned Hypersonic Vehicle 被引量:2
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作者 梁冰冰 江驹 +1 位作者 甄子洋 马坤 《Transactions of Nanjing University of Aeronautics and Astronautics》 EI CSCD 2015年第1期110-114,共5页
To solve the flight control problem for unmanned hypersonic vehicles,a novel intelligent optimized control method is proposed.A flight control system based on integral separated proportional-integral-derivative(PID)co... To solve the flight control problem for unmanned hypersonic vehicles,a novel intelligent optimized control method is proposed.A flight control system based on integral separated proportional-integral-derivative(PID)control is designed for hypersonic vehicle,and an improved shuffled frog leaping algorithm is presented to optimize the control parameters.A nonlinear model of hypersonic vehicle is established to examine the dynamic characteristics achieved by the flight control system.Simulation results demonstrate that the proposed optimized controller can effectively achieve better flight control performance than the traditional controller. 展开更多
关键词 hypersonic vehicles flight control shuffled frog leaping algorithm unmanned aerial vehicles(UAVs)
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Modified Shuffled Frog Leaping Algorithm for Solving Economic Load Dispatch Problem 被引量:2
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作者 Priyanka Roy A. Chakrabarti 《Energy and Power Engineering》 2011年第4期551-556,共6页
In the recent restructured power system scenario and complex market strategy, operation at absolute minimum cost is no longer the only criterion for dispatching electric power. The economic load dispatch (ELD) problem... In the recent restructured power system scenario and complex market strategy, operation at absolute minimum cost is no longer the only criterion for dispatching electric power. The economic load dispatch (ELD) problem which accounts for minimization of both generation cost and power loss is itself a multiple conflicting objective function problem. In this paper, a modified shuffled frog-leaping algorithm (MSFLA), which is an improved version of memetic algorithm, is proposed for solving the ELD problem. It is a relatively new evolutionary method where local search is applied during the evolutionary cycle. The idea of memetic algorithm comes from memes, which unlike genes can adapt themselves. The performance of MSFLA has been shown more efficient than traditional evolutionary algorithms for such type of ELD problem. The application and validity of the proposed algorithm are demonstrated for IEEE 30 bus test system as well as a practical power network of 203 bus 264 lines 23 machines system. 展开更多
关键词 ECONOMIC Load DISPATCH Modified shuffled frog leaping algorithm GENETIC algorithm
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Shuffled frog leaping algorithm with non-dominated sorting for dynamic weapon-target assignment 被引量:2
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作者 ZHAO Yang LIU Jicheng +1 位作者 JIANG Ju ZHEN Ziyang 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2023年第4期1007-1019,共13页
The dynamic weapon target assignment(DWTA)problem is of great significance in modern air combat.However,DWTA is a highly complex constrained multi-objective combinatorial optimization problem.An improved elitist non-d... The dynamic weapon target assignment(DWTA)problem is of great significance in modern air combat.However,DWTA is a highly complex constrained multi-objective combinatorial optimization problem.An improved elitist non-dominated sorting genetic algorithm-II(NSGA-II)called the non-dominated shuffled frog leaping algorithm(NSFLA)is proposed to maximize damage to enemy targets and minimize the self-threat in air combat constraints.In NSFLA,the shuffled frog leaping algorithm(SFLA)is introduced to NSGA-II to replace the inside evolutionary scheme of the genetic algorithm(GA),displaying low optimization speed and heterogeneous space search defects.Two improvements have also been raised to promote the internal optimization performance of SFLA.Firstly,the local evolution scheme,a novel crossover mechanism,ensures that each individual participates in updating instead of only the worst ones,which can expand the diversity of the population.Secondly,a discrete adaptive mutation algorithm based on the function change rate is applied to balance the global and local search.Finally,the scheme is verified in various air combat scenarios.The results show that the proposed NSFLA has apparent advantages in solution quality and efficiency,especially in many aircraft and the dynamic air combat environment. 展开更多
关键词 dynamic weapon-target assignment(DWTA)problem shuffled frog leaping algorithm(SFLA) air combat research
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Control Strategy for a Quadrotor Based on a Memetic Shuffled Frog Leaping Algorithm 被引量:1
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作者 Nour Ben Ammar Hegazy Rezk Soufiene Bouallègue 《Computers, Materials & Continua》 SCIE EI 2021年第6期4081-4100,共20页
This work presents a memetic Shuffled Frog Leaping Algorithm(SFLA)based tuning approach of an Integral Sliding Mode Controller(ISMC)for a quadrotor type of Unmanned Aerial Vehicles(UAV).Based on the Newton–Euler form... This work presents a memetic Shuffled Frog Leaping Algorithm(SFLA)based tuning approach of an Integral Sliding Mode Controller(ISMC)for a quadrotor type of Unmanned Aerial Vehicles(UAV).Based on the Newton–Euler formalism,a nonlinear dynamic model of the studied quadrotor is firstly established for control design purposes.Since the main parameters of the ISMC design are the gains of the sliding surfaces and signum functions of the switching control law,which are usually selected by repetitive and time-consuming trials-errors based procedures,a constrained optimization problem is formulated for the systematically tuning of these unknown variables.Under time-domain operating constraints,such an optimization-based tuning problem is effectively solved using the proposed SFLA metaheuristic with an empirical comparison to other evolutionary computation-and swarm intelligence-based algorithms such as the Crow Search Algorithm(CSA),Fractional Particle Swarm Optimization Memetic Algorithm(FPSOMA),Ant Bee Colony(ABC)and Harmony Search Algorithm(HSA).Numerical experiments are carried out for various sets of algorithms’parameters to achieve optimal gains of the sliding mode controllers for the altitude and attitude dynamics stabilization.Comparative studies revealed that the SFLA is a competitive and easily implemented algorithm with high performance in terms of robustness and non-premature convergence.Demonstrative results verified that the proposed metaheuristicsbased approach is a promising alternative for the systematic tuning of the effective design parameters in the integral sliding mode control framework. 展开更多
关键词 QUADROTOR MODELING integral sliding mode control gains tuning advanced metaheuristics memetic algorithms shuffled frog leaping algorithm
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Quantitative algorithm for airborne gamma spectrum of large sample based on improved shuffled frog leaping-particle swarm optimization convolutional neural network 被引量:1
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作者 Fei Li Xiao-Fei Huang +5 位作者 Yue-Lu Chen Bing-Hai Li Tang Wang Feng Cheng Guo-Qiang Zeng Mu-Hao Zhang 《Nuclear Science and Techniques》 SCIE EI CAS CSCD 2023年第7期242-252,共11页
In airborne gamma ray spectrum processing,different analysis methods,technical requirements,analysis models,and calculation methods need to be established.To meet the engineering practice requirements of airborne gamm... In airborne gamma ray spectrum processing,different analysis methods,technical requirements,analysis models,and calculation methods need to be established.To meet the engineering practice requirements of airborne gamma-ray measurements and improve computational efficiency,an improved shuffled frog leaping algorithm-particle swarm optimization convolutional neural network(SFLA-PSO CNN)for large-sample quantitative analysis of airborne gamma-ray spectra is proposed herein.This method was used to train the weight of the neural network,optimize the structure of the network,delete redundant connections,and enable the neural network to acquire the capability of quantitative spectrum processing.In full-spectrum data processing,this method can perform the functions of energy spectrum peak searching and peak area calculations.After network training,the mean SNR and RMSE of the spectral lines were 31.27 and 2.75,respectively,satisfying the demand for noise reduction.To test the processing ability of the algorithm in large samples of airborne gamma spectra,this study considered the measured data from the Saihangaobi survey area as an example to conduct data spectral analysis.The results show that calculation of the single-peak area takes only 0.13~0.15 ms,and the average relative errors of the peak area in the U,Th,and K spectra are 3.11,9.50,and 6.18%,indicating the high processing efficiency and accuracy of this algorithm.The performance of the model can be further improved by optimizing related parameters,but it can already meet the requirements of practical engineering measurement.This study provides a new idea for the full-spectrum processing of airborne gamma rays. 展开更多
关键词 Large sample Airborne gamma spectrum(AGS) shuffled frog leaping algorithm(SFLA) Particle swarm optimization(PSO) Convolutional neural network(CNN)
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A ε-indicator-based shuffled frog leaping algorithm for many-objective optimization problems
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作者 WANG Na SU Yuchao +2 位作者 CHEN Xiaohong LI Xia LIU Dui 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2020年第1期142-155,共14页
Many-objective optimization problems take challenges to multi-objective evolutionary algorithms.A number of nondominated solutions in population cause a difficult selection towards the Pareto front.To tackle this issu... Many-objective optimization problems take challenges to multi-objective evolutionary algorithms.A number of nondominated solutions in population cause a difficult selection towards the Pareto front.To tackle this issue,a series of indicatorbased multi-objective evolutionary algorithms(MOEAs)have been proposed to guide the evolution progress and shown promising performance.This paper proposes an indicator-based manyobjective evolutionary algorithm calledε-indicator-based shuffled frog leaping algorithm(ε-MaOSFLA),which adopts the shuffled frog leaping algorithm as an evolutionary strategy and a simple and effectiveε-indicator as a fitness assignment scheme to press the population towards the Pareto front.Compared with four stateof-the-art MOEAs on several standard test problems with up to 50 objectives,the experimental results show thatε-MaOSFLA outperforms the competitors. 展开更多
关键词 evolutionary algorithm many-objective optimization shuffled frog leaping algorithm(SFLA) ε-indicator
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Test Case Prioritization in Unit and Integration Testing:A Shuffled-Frog-Leaping Approach
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作者 Atulya Gupta Rajendra Prasad Mahapatra 《Computers, Materials & Continua》 SCIE EI 2023年第3期5369-5387,共19页
Both unit and integration testing are incredibly crucial for almost any software application because each of them operates a distinct process to examine the product.Due to resource constraints,when software is subject... Both unit and integration testing are incredibly crucial for almost any software application because each of them operates a distinct process to examine the product.Due to resource constraints,when software is subjected to modifications,the drastic increase in the count of test cases forces the testers to opt for a test optimization strategy.One such strategy is test case prioritization(TCP).Existing works have propounded various methodologies that re-order the system-level test cases intending to boost either the fault detection capabilities or the coverage efficacy at the earliest.Nonetheless,singularity in objective functions and the lack of dissimilitude among the re-ordered test sequences have degraded the cogency of their approaches.Considering such gaps and scenarios when the meteoric and continuous updations in the software make the intensive unit and integration testing process more fragile,this study has introduced a memetics-inspired methodology for TCP.The proposed structure is first embedded with diverse parameters,and then traditional steps of the shuffled-frog-leaping approach(SFLA)are followed to prioritize the test cases at unit and integration levels.On 5 standard test functions,a comparative analysis is conducted between the established algorithms and the proposed approach,where the latter enhances the coverage rate and fault detection of re-ordered test sets.Investigation results related to the mean average percentage of fault detection(APFD)confirmed that the proposed approach exceeds the memetic,basic multi-walk,PSO,and optimized multi-walk by 21.7%,13.99%,12.24%,and 11.51%,respectively. 展开更多
关键词 Test case prioritization unit testing shuffled frog leaping approach memetic based optimization algorithm integration testing
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Recognition of practical speech emotion using improved shuffled frog leaping algorithm 被引量:4
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作者 ZHANG Xiaodan HUANG Chengwei +1 位作者 ZHAO Li ZOU Cairong 《Chinese Journal of Acoustics》 2014年第4期441-456,共16页
Due to the drawbacks in Support Vector Machine(SVM)parameter optimization,an Improved Shuffled Frog Leaping Algorithm(Im-SFLA)was proposed,and the learning ability in practical speech emotion recognition was impro... Due to the drawbacks in Support Vector Machine(SVM)parameter optimization,an Improved Shuffled Frog Leaping Algorithm(Im-SFLA)was proposed,and the learning ability in practical speech emotion recognition was improved.Firstly,we introduced Simulated Annealing(SA),Immune Vaccination(Iv),Gaussian mutation and chaotic disturbance into the basic SFLA,which bManced the search efficiency and population diversity effectively.Secondly,Im-SFLA Was applied to the optimization of SVM parameters,and an Im-SFLA-SVM method Was proposed.Thirdly,the acoustic features of practical speech emotion,such aS ridgetiness,were analyzed.The pitch frequency,short-term energy,formant frequency and chaotic characteristics were analyzed corresponding to different emotion categories,and we constructed a 144-dimensional emotion feature vector for recognition and reduced to 4-dimension by adopting Linear Discriminant Analysis(LDA) Finally,the Im-SFLA-SVM method Was tested on the practical speech emotion database,and the recognition results were compared with Shuffled Frog Leaping Algorithm optimization-SVM(SFLA-SVM)method,Particle Swarm Optimization algorithm optimization-SVM(PSo-SVM) method,basic SVM,Gaussian Mixture Model(GMM)method and Back Propagation(BP)neural network method.The experimentM resuits showed that the average recognition rate of Im-SFLA-SVM method was 77.8%,which had improved 1.7%,2.7%,3.4%,4.7%and 7.8%respectively,compared with the other methods.The recognition of fidgetiness was significantly improve,thus verifying that Im-SFLA was an effective SVM parameter selection method,and the Im-SFLA-SVM method may significantly improve the practical speech emotion recognition. 展开更多
关键词 SFLA SVM Recognition of practical speech emotion using improved shuffled frog leaping algorithm
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Research on Data Extraction and Analysis of Software Defect in IoT Communication Software 被引量:2
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作者 Wenbin Bi Fang Yu +5 位作者 Ning Cao Wei Huo Guangsheng Cao Xiuli Han Lili Sun Russell Higgs 《Computers, Materials & Continua》 SCIE EI 2020年第11期1837-1854,共18页
Software defect feature selection has problems of feature space dimensionality reduction and large search space.This research proposes a defect prediction feature selection framework based on improved shuffled frog le... Software defect feature selection has problems of feature space dimensionality reduction and large search space.This research proposes a defect prediction feature selection framework based on improved shuffled frog leaping algorithm(ISFLA).Using the two-level structure of the framework and the improved hybrid leapfrog algorithm's own advantages,the feature values are sorted,and some features with high correlation are selected to avoid other heuristic algorithms in the defect prediction that are easy to produce local The case where the convergence rate of the optimal or parameter optimization process is relatively slow.The framework improves generalization of predictions of unknown data samples and enhances the ability to search for features related to learning tasks.At the same time,this framework further reduces the dimension of the feature space.After the contrast simulation experiment with other common defect prediction methods,we used the actual test data set to verify the framework for multiple iterations on Internet of Things(IoT)system platform.The experimental results show that the software defect prediction feature selection framework based on ISFLA is very effective in defect prediction of IoT communication software.This framework can save the testing time of IoT communication software,effectively improve the performance of software defect prediction,and ensure the software quality. 展开更多
关键词 Improved shuffled frog leaping algorithm defect prediction feature selection framework Internet of Things
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基于混合蛙跳算法的果园土壤全氮含量高光谱预测 被引量:1
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作者 冯上奇 袁全春 +3 位作者 黄凯 孙元昊 曾锦 吕晓兰 《农业机械学报》 北大核心 2025年第6期277-285,共9页
土壤全氮含量是土壤重要的养分指标,基于高光谱数据研究并构建果园土壤全氮含量预测模型,为准确检测土壤全氮含量提供新方法。以江苏省农业科学院梨园土壤为研究对象,利用高光谱成像技术获取土壤光谱反射率数据,引入混合蛙跳算法和竞争... 土壤全氮含量是土壤重要的养分指标,基于高光谱数据研究并构建果园土壤全氮含量预测模型,为准确检测土壤全氮含量提供新方法。以江苏省农业科学院梨园土壤为研究对象,利用高光谱成像技术获取土壤光谱反射率数据,引入混合蛙跳算法和竞争性自适应加权采样进行光谱特征提取,并分别采用全波段和特征波段构建偏最小二乘回归、支持向量机、随机森林和卷积神经网络模型对土壤全氮含量进行估测。结果表明:原始光谱经过多种预处理方法处理后,经SG卷积平滑联合标准正态变换预处理,全波段构建的全氮预测模型表现最佳;基于混合蛙跳算法提取10个关键波段,占总波段数量的4.08%,有效降低了数据维度;基于混合蛙跳算法提取特征波段构建的卷积神经网络模型表现优异,此模型测试集决定系数为0.95、均方根误差为0.21 g/kg、相对分析误差为3.97。研究结果表明应用混合蛙跳算法能高效提取特征波段,降低数据维度,并且提高了土壤全氮含量估测精度,为果园土壤全氮含量准确估测提供参考。 展开更多
关键词 果园 土壤全氮 预测模型 高光谱成像技术 混合蛙跳算法 卷积神经网络
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基于GA_IPSO-SFLA-WNN模型的光伏阵列故障诊断研究
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作者 周文 高强 +1 位作者 刘赫 毛泽民 《天津理工大学学报》 2025年第2期37-44,共8页
为准确辨识光伏阵列的运行故障,该研究提出了一种基于遗传动惯量粒子群优化算法(genetic algorithm and improved particle swarm optimization,GA_IPSO)、混合蛙跳算法(shuffled frog leaping algorithm,SFLA)以及小波神经网络(wavelet... 为准确辨识光伏阵列的运行故障,该研究提出了一种基于遗传动惯量粒子群优化算法(genetic algorithm and improved particle swarm optimization,GA_IPSO)、混合蛙跳算法(shuffled frog leaping algorithm,SFLA)以及小波神经网络(wavelet neural network,WNN)相结合的故障诊断方法。首先建立了光伏组件的运行模型,提取了故障状态下光伏组件的运行数据;然后,搭建以WNN为基础的光伏故障诊断模型,针对WNN模型的参数初始值敏感且容易陷入局部极小值的问题,采取SFLA算法对初始值进行优化;为解决SFLA优化的WNN模型中不同子组个体差异大和移动步长随机性的问题,采取GA_IPSO求解最优个体和最佳步长。实验结果表明,该方法对5种光伏故障(开路、短路、阴影、老化和电势诱导衰减(potential induced degradation,PID))的平均识别准确率达到98.50%,相较改进前故障的准确率提升了9.5%,在澳大利亚光伏数据集(DKASC)下优于误差反向传播(back propagation,BP)神经网络、极限学习机(extreme learning machine,ELM)和支持向量机(support vector machine,SVM)的分类效果。 展开更多
关键词 光伏阵列 故障诊断 小波神经网络 混合蛙跳算法 遗传动惯量粒子群算法
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混合离散蛙跳算法求解柔性装配系统调度问题
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作者 李晓玲 冯彦翔 +1 位作者 张广辉 段浩浩 《控制理论与应用》 北大核心 2025年第4期816-826,共11页
本文主要研究不含中间缓冲区的柔性装配系统(FAS)的优化调度问题,其中当工件竞争使用有限的生产资源时,不合理的资源分配会导致系统死锁(deadlock).针对易死锁(deadlock-prone)FAS的优化调度问题,本文采用Petri网建模,提出了一种混合离... 本文主要研究不含中间缓冲区的柔性装配系统(FAS)的优化调度问题,其中当工件竞争使用有限的生产资源时,不合理的资源分配会导致系统死锁(deadlock).针对易死锁(deadlock-prone)FAS的优化调度问题,本文采用Petri网建模,提出了一种混合离散蛙跳算法(HDSFLA)以最小化最大完工时间(makespan).首先,提出了一种新的编码解码方法,其中一个个体编码为一个包含全部工件加工信息的变迁序列,可解码为一个工件–工序序列;其次,为了保证种群中个体的可行性,提出了一个个体修正算法和基于最早引发时间的改进个体修正算法,从而将不可行个体修复为可行个体;然后,结合编码特征设计了用于生成新个体的交叉操作;最后,为了平衡算法的全局搜索和局部开发能力,设计了一个基于交换和插入算子的局部搜索策略.通过不同规模算例上的仿真实验和算法对比分析,验证了HDSFLA的有效性. 展开更多
关键词 柔性装配系统 死锁 PETRI网 调度 混合离散蛙跳算法
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基于混合蛙跳算法城市多目标土地利用空间优化配置方法
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作者 李思滢 《兵工自动化》 北大核心 2025年第3期44-49,共6页
为保障城市土地利用合理性与环境友好性,提出一种城市多目标土地利用空间优化配置方法。利用混合蛙跳算法在多目标求解问题方面的优势,以城市土地新开发与已开发用地距离最小、城市土地单元用地间环境因素不兼容性最小为目标函数的约束... 为保障城市土地利用合理性与环境友好性,提出一种城市多目标土地利用空间优化配置方法。利用混合蛙跳算法在多目标求解问题方面的优势,以城市土地新开发与已开发用地距离最小、城市土地单元用地间环境因素不兼容性最小为目标函数的约束条件,构建基于混合蛙跳算法的城市多目标土地利用空间优化配置模型。将城市用地栅格作为操作基本单元,引入首尾排除分组、智能学习与变异算子等改进混合蛙跳算法,获取城市多目标土地利用空间优化配置模型最优解。实验结果表明:该方法对城市土地进行优化配置后,环境兼容性几乎全在0.5以上,并且大部分接近1。可较好地实现城市多目标土地利用空间优化配置,效率较高,优化配置后土地资源的节约性与环境兼容性也较好。 展开更多
关键词 混合蛙跳算法 多目标 土地利用空间 优化配置 元胞数组 环境兼容
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基于改进蛙跳算法的码头三阶段联合调度优化
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作者 陶振东 钟祾充 贺利军 《起重运输机械》 2025年第2期37-44,共8页
自动化集装箱码头装卸作业包括岸边集装箱起重机(QC)作业、自动导引小车(AGV)水平运输以及集装箱门式起重机(YC)作业3个作业阶段。文中针对QC-AGV-YC三阶段联合调度问题,考虑各作业阶段的能耗,构建了以最小化总能耗和最小化总作业完成... 自动化集装箱码头装卸作业包括岸边集装箱起重机(QC)作业、自动导引小车(AGV)水平运输以及集装箱门式起重机(YC)作业3个作业阶段。文中针对QC-AGV-YC三阶段联合调度问题,考虑各作业阶段的能耗,构建了以最小化总能耗和最小化总作业完成时间为目标的混合整数规划模型。为求解模型,针对问题特征,引入新的编解码策略和快速非支配排序策略,提出了一种改进的多目标离散蛙跳算法(DMOSFLA)。另外,改进了跳跃策略,以更好地搜索离散解空间。最后,设计不同规模的算例,将DMOSFLA算法与其他算法进行比较。结果表明,DMOSFLA算法在求解三阶段联合调度问题时具有更好的寻优能力以及求解质量,能够为码头管理者提供满足不同需求的调度方案,提高了码头调度的灵活性。 展开更多
关键词 自动化集装箱码头 三阶段联合调度 多目标优化 改进的多目标离散蛙跳算法
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混合蛙跳算法研究综述 被引量:87
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作者 崔文华 刘晓冰 +1 位作者 王伟 王介生 《控制与决策》 EI CSCD 北大核心 2012年第4期481-486,493,共7页
针对混合蛙跳算法(SFLA)是一种结合了基于遗传基因的模因演算算法和基于群体觅食行为的粒子群优化算法的亚启发式协同搜索群智能算法,系统地介绍了SFLA的基本原理和算法流程,讨论了SFLA的研究进展和应用现状,并指出了SFLA的发展趋势和... 针对混合蛙跳算法(SFLA)是一种结合了基于遗传基因的模因演算算法和基于群体觅食行为的粒子群优化算法的亚启发式协同搜索群智能算法,系统地介绍了SFLA的基本原理和算法流程,讨论了SFLA的研究进展和应用现状,并指出了SFLA的发展趋势和下一步的研究方向. 展开更多
关键词 混合蛙跳算法 模因演算 粒子群优化 群智能
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一种基于阈值选择策略的改进混合蛙跳算法 被引量:80
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作者 李英海 周建中 +1 位作者 杨俊杰 刘力 《计算机工程与应用》 CSCD 北大核心 2007年第35期19-21,共3页
混合蛙跳算法(SFLA)是一种全新的后启发式群体进化算法,具有高效的计算性能和优良的全局搜索能力。对混合蛙跳算法的基本原理进行了阐述,针对算法局部更新策略引起的更新操作前后个体空间位置变化较大,降低收敛速度这一问题,提出一种基... 混合蛙跳算法(SFLA)是一种全新的后启发式群体进化算法,具有高效的计算性能和优良的全局搜索能力。对混合蛙跳算法的基本原理进行了阐述,针对算法局部更新策略引起的更新操作前后个体空间位置变化较大,降低收敛速度这一问题,提出一种基于阈值选择策略的改进混合蛙跳算法。通过不满足阈值条件的个体分量不予更新的策略,减小了个体空间差异,从而改善了算法性能。数值实验证明了该改进算法的有效性,并对改进算法的阈值参数进行了率定。 展开更多
关键词 进化算法 混合蛙跳算法 优化
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随机蛙跳算法的研究进展 被引量:22
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作者 韩毅 蔡建湖 +3 位作者 周根贵 李延来 林华珍 唐加福 《计算机科学》 CSCD 北大核心 2010年第7期16-19,共4页
随机蛙跳算法(Shuffled Frog Leaping Lgorithm,SFLA)是进化计算领域中一种新兴、有效的亚启发式群体计算技术,近几年来逐渐受到学术界和工程优化领域的关注。SFLA结合了具有较强局部搜索(Local Search,LS)能力的元算法(Memetic Algorit... 随机蛙跳算法(Shuffled Frog Leaping Lgorithm,SFLA)是进化计算领域中一种新兴、有效的亚启发式群体计算技术,近几年来逐渐受到学术界和工程优化领域的关注。SFLA结合了具有较强局部搜索(Local Search,LS)能力的元算法(Memetic Algorithm,MA)和具有良好全局搜索(Global Search,GS)性能的粒子群算法(Particle Swarm Optimization,PSO)的特点,因此其寻优能力强,易于编程实现。详细阐述了SFLA的基本原理和流程,总结了SFLA目前在优化和工程技术等领域中的研究,展望了SFLA的发展前景。 展开更多
关键词 随机蛙跳算法 亚启发式算法 工程优化 元算法 粒子群算法
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基于人工鱼群与蛙跳混合算法的变压器Jiles-Atherton模型参数辨识 被引量:35
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作者 耿超 王丰华 +1 位作者 苏磊 张君 《中国电机工程学报》 EI CSCD 北大核心 2015年第18期4799-4807,共9页
变压器铁芯磁化特性的准确建模是研究变压器直流偏磁现象的关键,在使用Jiles-Atherton(J-A)模型对变压器的磁滞回线进行建模分析时,需要对变压器直流偏磁工况下J-A模型中的5个关键参数进行准确识别。提出了人工鱼群与蛙跳混合算法对J-A... 变压器铁芯磁化特性的准确建模是研究变压器直流偏磁现象的关键,在使用Jiles-Atherton(J-A)模型对变压器的磁滞回线进行建模分析时,需要对变压器直流偏磁工况下J-A模型中的5个关键参数进行准确识别。提出了人工鱼群与蛙跳混合算法对J-A模型中的关键参数进行辨识,该算法将两种仿生算法有机融合,在鱼群算法寻找到最优区域后切换至蛙跳算法进行局部搜索,兼具了人工鱼群算法前期收敛迅速与蛙跳算法局部搜索准确的优势。分别将所提混合算法及多种现有识别算法应用于数值仿真算例与变压器直流偏磁实测曲线的参数识别,结果表明基于人工鱼群与蛙跳混合算法得到的变压器磁滞回线与实测曲线吻合良好,且具有识别精度高和计算效率高的优点,验证了该算法在变压器J-A模型参数识别中的有效性,进而可以应用于对变压器直流偏磁下运行特性的准确分析。 展开更多
关键词 Jiles-Atherton模型 变压器 直流偏磁 人工鱼群算法 蛙跳算法
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基于混合蛙跳算法的分布式风电源规划 被引量:34
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作者 张沈习 陈楷 +2 位作者 龙禹 程浩忠 李珂 《电力系统自动化》 EI CSCD 北大核心 2013年第13期76-82,共7页
对分布式风电源(DWG)出力的随机性和负荷的不确定性进行概率建模。在此基础上,以年综合费用最小为目标,利用机会约束规划方法建立了配电网DWG选址定容规划模型。采用基于拉丁超立方采样蒙特卡洛模拟(LHS-MCS)法的概率潮流判断规划方案... 对分布式风电源(DWG)出力的随机性和负荷的不确定性进行概率建模。在此基础上,以年综合费用最小为目标,利用机会约束规划方法建立了配电网DWG选址定容规划模型。采用基于拉丁超立方采样蒙特卡洛模拟(LHS-MCS)法的概率潮流判断规划方案是否满足节点电压机会约束和支路电流机会约束。设计了混合蛙跳算法(SFLA)求解DWG规划模型的具体实现方法。33节点配电网的DWG规划结果验证了模型的合理性、LHS-MCS检验机会约束条件的有效性以及SFLA的高效性。 展开更多
关键词 配电网 分布式风电源 选址定容 机会约束规划 概率潮流 混合蛙跳算法
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