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AN OPTIMUM VEHICULAR PATH ALGORITHM FOR TRAFFIC NETWORK BASED ON HIERARCHICAL SPATIAL REASONING 被引量:4
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作者 Lu Feng Zhou Chenghu Wan Qing 《Geo-Spatial Information Science》 2000年第4期36-42,共7页
Human beings’ intellection is the characteristic of a distinct hierarchy and can be taken to construct a heuristic in the shortest path algorithms.It is detailed in this paper how to utilize the hierarchical reasonin... Human beings’ intellection is the characteristic of a distinct hierarchy and can be taken to construct a heuristic in the shortest path algorithms.It is detailed in this paper how to utilize the hierarchical reasoning on the basis of greedy and directional strategy to establish a spatial heuristic,so as to improve running efficiency and suitability of shortest path algorithm for traffic network.The authors divide urban traffic network into three hierarchies and set forward a new node hierarchy division rule to avoid the unreliable solution of shortest path.It is argued that the shortest path,no matter distance shortest or time shortest,is usually not the favorite of drivers in practice.Some factors difficult to expect or quantify influence the drivers’ choice greatly.It makes the drivers prefer choosing a less shortest,but more reliable or flexible path to travel on.The presented optimum path algorithm,in addition to the improvement of the running efficiency of shortest path algorithms up to several times,reduces the emergence of those factors,conforms to the intellection characteristic of human beings,and is more easily accepted by drivers.Moreover,it does not require the completeness of networks in the lowest hierarchy and the applicability and fault tolerance of the algorithm have improved.The experiment result shows the advantages of the presented algorithm.The authors argued that the algorithm has great potential application for navigation systems of large_scale traffic networks. 展开更多
关键词 optimum PATH algorithm TRAFFIC NETWORK HIERARCHICAL spatial REASONING
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Immune Algorithm for Selecting Optimum Services in Web Services Composition 被引量:4
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作者 GAO Yan NA Jun ZHANG Bin YANG Lei GONG Qiang DAI Yu 《Wuhan University Journal of Natural Sciences》 EI CAS 2006年第1期221-225,共5页
For the problem of dynamic optimization in Web services composition, this paper presents a novel approach for selecting optimum Web services, which is based on the longest path method of weighted multistage graph. We ... For the problem of dynamic optimization in Web services composition, this paper presents a novel approach for selecting optimum Web services, which is based on the longest path method of weighted multistage graph. We propose and implement an Immune Algorithm for global optimization to construct composed Web services. Results of the experimentation illustrates that the algorithm in this paper has a powerful capability and can greatly improve the efficiency and veracity in service selection. 展开更多
关键词 Web services composition optimum selection Immune algorithm
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Genetic algorithm for pareto optimum-based route selection 被引量:1
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作者 Cui Xunxue Li Qin Tao Qing 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2007年第2期360-368,共9页
A quality of service (QoS) or constraint-based routing selection needs to find a path subject to multiple constraints through a network. The problem of finding such a path is known as the multi-constrained path (MC... A quality of service (QoS) or constraint-based routing selection needs to find a path subject to multiple constraints through a network. The problem of finding such a path is known as the multi-constrained path (MCP) problem, and has been proven to be NP-complete that cannot be exactly solved in a polynomial time. The NPC problem is converted into a multiobjective optimization problem with constraints to be solved with a genetic algorithm. Based on the Pareto optimum, a constrained routing computation method is proposed to generate a set of nondominated optimal routes with the genetic algorithm mechanism. The convergence and time complexity of the novel algorithm is analyzed. Experimental results show that multiobjective evolution is highly responsive and competent for the Pareto optimum-based route selection. When this method is applied to a MPLS and metropolitan-area network, it will be capable of optimizing the transmission performance. 展开更多
关键词 Route selection Multiobjective optimization Pareto optimum Multi-constrained path Genetic algorithm.
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Research on the Optimum Configuration Strategy for the Adjustable Parameters in Ant Colony Algorithm 被引量:16
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作者 Haibin Duan Daobo Wang Xiufen Yu 《通讯和计算机(中英文版)》 2005年第9期32-35,共4页
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Reliability-Based Optimum Design of a Simple Offshore Platform Based on Genetic Algorithms
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作者 Zhang, LY Hu, YC Li, XJ 《China Ocean Engineering》 SCIE EI 1998年第1期43-52,共10页
In this paper, the problem of reliability-based optimal design of simple offshore platform is studied, and a nonlinear fatigue damage model based on damage mechanics and genetic algorithms are used in the fatigue reli... In this paper, the problem of reliability-based optimal design of simple offshore platform is studied, and a nonlinear fatigue damage model based on damage mechanics and genetic algorithms are used in the fatigue reliability optimum design of the structure under stochastic wave load. The fatigue damage model and the yield failure reliability analyzing model are used in the paper. The reliability of the models and the effectiveness of genetic algorithm are shown by the results of optimum design. 展开更多
关键词 damage mechanics genetic algorithms reliability-based optimum design fatigue reliability
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Short Range Top Attack Trajectory Optimum Design Based on Genetic Algorithm
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作者 唐胜景 许晓霞 戴斌 《Journal of Beijing Institute of Technology》 EI CAS 2006年第1期13-16,共4页
A flying-body is considered as the reference model, the optimized mathematical model is established. The genetic operators are designed and algorithm parameters are selected reasonably. The scheme control signal in sh... A flying-body is considered as the reference model, the optimized mathematical model is established. The genetic operators are designed and algorithm parameters are selected reasonably. The scheme control signal in short range top attack flight trajectory is optimized by using genetic algorithm. The short range top attack trajectory designed meets the design requirements, with the increase of the falling angle and the decrease of the minimum range. The application of genetic algorithm to top attack trajectory optimization is proved to be feasibly and effectively according to the analyses of results. 展开更多
关键词 genetic algorithm short range top attack trajectory optimum design
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Research on Multi-stage Optimum Design Technology for Virtual Supply Chain Based on Cybermediary in Manufacturing Industry 被引量:1
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作者 刘雪红 张铖 《Journal of Donghua University(English Edition)》 EI CAS 2011年第3期331-335,共5页
Virtual supply chain based on cybermediary (VSC-CM) is an innovative VSC pattern meeting informationization development requirements in the manufacturing industry. Methods and features of customer-demand-oriented opti... Virtual supply chain based on cybermediary (VSC-CM) is an innovative VSC pattern meeting informationization development requirements in the manufacturing industry. Methods and features of customer-demand-oriented optimum VSC design adopted by CM are discussed. A customer demand goal system applying to VSC-CM design and quantifying methods of these goals are accordingly given. Then a three-stage optimum VSC design scheme based on dynamic goals is designed, which considers both the holistic optimization of VSC and individuation demands of member enterprises. To implement the scheme, an optimum algorithm synthesizing fuzzy c-means clustering algorithm and topsis comprehensive evaluation algorithm is presented. Feasibility and rapidity of this scheme is proved through a case analysis finally. 展开更多
关键词 virtual supply chain CYBERMEDIARY customer demand goal three-stage scheme optimum algorithm
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Remote Sensing Applied to the Extraction of Road Geometric Features Based on Optimum Path Forest Classifiers, Northeastern Brazil 被引量:1
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作者 Márcia Macedo Maria Maia +1 位作者 Emilia Kohlman Rabbani Oswaldo Lima Neto 《Journal of Geographic Information System》 2020年第1期15-44,共30页
One of the principal difficulties related to road safety management in Brazil is the lack of data on road projects, especially those on rural roads, which makes it difficult to use road safety studies and models from ... One of the principal difficulties related to road safety management in Brazil is the lack of data on road projects, especially those on rural roads, which makes it difficult to use road safety studies and models from other countries as a reference. Updating road networks through the use of hyperspectral remote sensing images can be a good alternative. However, accurately recognizing and extracting hyperspectral images from roads has been recognized as a challenging task in the processing of hyperspectral data. In order to solve the aforementioned challenges, Hyperion hyperspectral images were combined with the Optimum Forest Path (OPF) algorithm for supervised classification of rural roads and the effectiveness of the OPF and SVM classifiers when applied to these areas was compared. Both classifiers produced reasonable results, however, the OPF algorithm outperformed SVM. The higher classification accuracy obtained by the OPF was mainly attributed to the ability to better distinguish between regions of exposed soil and unpaved roads. 展开更多
关键词 ROADS MULTISPECTRAL IMAGES HYPERSPECTRAL IMAGES optimum Path Forest algorithm
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Geometric Optimization Design System Incorporating Hybrid GRECO-WM Scheme and Genetic Algorithm 被引量:5
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作者 Ye Shaobo Xiong Junjiang 《Chinese Journal of Aeronautics》 SCIE EI CAS CSCD 2009年第6期599-606,共8页
This article seeks to outline an integrated and practical geometric optimization design system (GODS) incorporating hybrid graphical electromagnetic computing-wedge modeling (GRECO-WM) scheme and the genetic algor... This article seeks to outline an integrated and practical geometric optimization design system (GODS) incorporating hybrid graphical electromagnetic computing-wedge modeling (GRECO-WM) scheme and the genetic algorithm (GA) for calculating the radar cross section (RCS) and optimizing the geometric parameters of a large and complex target respectively. A new wedge modeling (WM) scheme is presented for calculating the high-frequency RCS of wedge with only one visible facet based on the method of equivalent currents (MEC). The applications of GODS to 2D cross-section and 3D surface are respectively implemented by choosing an average of monostatic RCS values corresponding to a series of incident angles over a frequency band as the optimum objective function. And the results demonstrate that the RCS can be effectively and conveniently reduced by the GODS presented in this article. 展开更多
关键词 radar cross section geometric parameter complex target optimum design wedge modeling genetic algorithms graphical electromagnetic computing
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Genetic algorithm optimization for finned channel performance
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作者 S.S.Mousavi K.Hooman S.J.Mousavi 《Applied Mathematics and Mechanics(English Edition)》 SCIE EI 2007年第12期1597-1604,共8页
Compared to a smooth channel, a finned channel provides a higher heat transfer coefficient; increasing the fin height enhances the heat transfer. However, this heat transfer enhancement is associated with an increase ... Compared to a smooth channel, a finned channel provides a higher heat transfer coefficient; increasing the fin height enhances the heat transfer. However, this heat transfer enhancement is associated with an increase in the pressure drop. This leads to an increased pumping power requirement so that one may seek an optimum design for such systems. The main goal of this paper is to define the exact location and size of fins in such a way that a minimal pressure drop coincides with an optimal heat transfer based on the genetic algorithm. Each fin arrangement is considered a solution to the problem (an individual for genetic algorithm). An initial population is generated randomly at the first step. Then the algorithm has been searched among these solutions and made new solutions iteratively by its functions to find an optimum design as reported in this article. 展开更多
关键词 Nusselt number pressure drop genetic algorithm optimum design BAFFLE
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Identification of ARMAX based on genetic algorithm
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作者 贺尚红 李旭宇 钟掘 《中国有色金属学会会刊:英文版》 CSCD 2002年第2期349-355,共7页
On the basis of genetic algorithm, an intelligent search approach to determination of parameters of ARMAX(Autor Regressive Moving Average model with external input) processes was proposed. By representing the system w... On the basis of genetic algorithm, an intelligent search approach to determination of parameters of ARMAX(Autor Regressive Moving Average model with external input) processes was proposed. By representing the system with pole and zero pairs and repairing illegal chromosomes, the search space is limited to stable schemes. In calculation of objective function the "shifted data window" was designed, so that every input output pair is used to guide the evolution and the "Data Saturation" is avoided. To prevent premature convergence, the adaptive fitness function was introduced, the conventional crossover and mutation operator was modified and the "catastrophic mutation" which is based on Metropolis mechanism was adopted. So the performance of convergence to the global optimum is improved. The validity and efficiency of proposed algorithm were illustrated by simulated results. 展开更多
关键词 系统识别 遗传算法 ARMAX 最小二乘
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An iterative algorithm in potential-field inversion
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作者 XIA Ke wen , SONG Jian ping , LI Chang biao(School of Electronic & Information Engineering, Xi’an Jiaotong University, Xi’an 710049, Shaanxi,China) 《西安石油学院学报(自然科学版)》 2003年第3期9-12,共4页
The problem of potential field inversion can be become that of solving system of linear equations by using of linear processing. There are a lot of algorithms for solving any system of linear equations, and the regula... The problem of potential field inversion can be become that of solving system of linear equations by using of linear processing. There are a lot of algorithms for solving any system of linear equations, and the regularized method is one of the best algorithms. But there is a shortcoming in application with the regularized method, viz. the optimum regularized parameter must be determined by experience, so it is difficulty to obtain an optimum solution. In this paper, an iterative algorithm for solving any system of linear equations is discussed, and a sufficient and necessary condition of the algorithm convergence is presented and proved. The algorithm is convergent for any starting point, and the optimum solution can be obtained, in particular, there is no need to calculate the inverse matrix in the algorithm. The typical practical example shows the iterative algorithm is simple and practicable, and the inversion effect is better than that of regularized method. 展开更多
关键词 重力勘探 线性方程 迭代算法 位场 势场 反演
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THE DECISION OF THE OPTIMAL PARAMETERS IN MARKOV RANDOM FIELDS OF IMAGES BY GENETIC ALGORITHM
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作者 Zheng Zhaobao Zheng Hong 《Geo-Spatial Information Science》 2000年第3期14-18,共5页
This paper introduces the principle of genetic algorithm and the basic method of solving Markov random field parameters.Focusing on the shortcomings in present methods,a new method based on genetic algorithms is propo... This paper introduces the principle of genetic algorithm and the basic method of solving Markov random field parameters.Focusing on the shortcomings in present methods,a new method based on genetic algorithms is proposed to solve the parameters in the Markov random field.The detailed procedure is discussed.On the basis of the parameters solved by genetic algorithms,some experiments on classification of aerial images are given.Experimental results show that the proposed method is effective and the classification results are satisfactory. 展开更多
关键词 GENETIC algorithm MARKOV RANDOM field PARAMETER optimum TEXTURE cl assification
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Distributed genetic algorithm for optimal planar arrays of aperture synthesis telescope
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作者 贺小箭 唐新怀 +1 位作者 尤晋元 文建国 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2004年第3期419-425,共7页
Sparse arrays of telescopes have a limited (u, v)-plane coverage. In this paper, an optimization method for designing planar arrays of an aperture synthesis telescope is proposed that is based on distributed genetic a... Sparse arrays of telescopes have a limited (u, v)-plane coverage. In this paper, an optimization method for designing planar arrays of an aperture synthesis telescope is proposed that is based on distributed genetic algorithm. This distributed genetic algorithm is implemented on a network of workstations using community communication model. Such an aperture synthesis system performs with imperfection of (u, v) components caused by deviations and(or) some missing baselines. With the maximum (u, v)-plane coverage of this rotation-optimized array, the image of the source reconstructed by inverse Fourier transform is satisfactory. 展开更多
关键词 distributed genetic algorithm optical aperture synthesis optimum planar array (u v) -spectrum sampling.
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基于学习型多策略改进鲸鱼算法的路径规划研究 被引量:4
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作者 岳凡 艾尔肯·亥木都拉 刘拴 《组合机床与自动化加工技术》 北大核心 2025年第2期46-51,56,共7页
为解决机器人在路径规划中路径过长与后期寻优停滞的问题,提出了一种学习型多策略改进鲸鱼优化算法(reinforcement learning multi-strategy improvement whale optimization algorithm,RLMIWOA),并在欧式距离的基础上引入了障碍物信息... 为解决机器人在路径规划中路径过长与后期寻优停滞的问题,提出了一种学习型多策略改进鲸鱼优化算法(reinforcement learning multi-strategy improvement whale optimization algorithm,RLMIWOA),并在欧式距离的基础上引入了障碍物信息与拐点信息,构建了路径规划适应度函数。首先,引入自适应帐篷映射初始化,使得初始化种群更加均匀;其次,引入了非线性收敛策略平衡算法的开发和探索阶段;然后,通过采用非线性加权因子对最优个体进行扰动,避免了其他个体对最优个体的“盲从”;最后,通过采用强化学习结合ε-精英逐维反向学习策略和动态局部最优逃生策略,提高了算法的收敛效率和跳出局部最优的能力。实验结果表明:RLMIWOA算法可以高效地找到最优路径,在路径搜索方面具有显著的优势。 展开更多
关键词 路径规划 强化学习 鲸鱼优化算法 适应度函数 局部最优
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Assembly Line Balancing Based on Double Chromosome Genetic Algorithm
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作者 刘俨后 左敦稳 张丹 《Transactions of Nanjing University of Aeronautics and Astronautics》 EI 2014年第6期622-628,共7页
Aiming at assembly line balancing problem,a double chromosome genetic algorithm(DCGA)is proposed to avoid trapping in local optimum,which is a disadvantage of standard genetic algorithm(SGA).In this algorithm,there ar... Aiming at assembly line balancing problem,a double chromosome genetic algorithm(DCGA)is proposed to avoid trapping in local optimum,which is a disadvantage of standard genetic algorithm(SGA).In this algorithm,there are two chromosomes of each individual,and the better one,regarded as dominant chromosome,determines the fitness.Dominant chromosome keeps excellent gene segments to speed up the convergence,and recessive chromosome maintains population diversity to get better global search ability to avoid local optimal solution.When the amounts of chromosomes are equal,the population size of DCGA is half that of SGA,which significantly reduces evolutionary time.Finally,the effectiveness is verified by experiments. 展开更多
关键词 double chromosome genetic algorithm assembly line balancing mathematical model global optimum
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An Adaptive Fruit Fly Optimization Algorithm for Optimization Problems
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作者 L. Q. Zhang J. Xiong J. K. Liu 《Journal of Applied Mathematics and Physics》 2023年第11期3641-3650,共10页
In this paper, we present a new fruit fly optimization algorithm with the adaptive step for solving unconstrained optimization problems, which is able to avoid the slow convergence and the tendency to fall into local ... In this paper, we present a new fruit fly optimization algorithm with the adaptive step for solving unconstrained optimization problems, which is able to avoid the slow convergence and the tendency to fall into local optimum of the standard fruit fly optimization algorithm. By using the information of the iteration number and the maximum iteration number, the proposed algorithm uses the floor function to ensure that the fruit fly swarms adopt the large step search during the olfactory search stage which improves the search speed;in the visual search stage, the small step is used to effectively avoid local optimum. Finally, using commonly used benchmark testing functions, the proposed algorithm is compared with the standard fruit fly optimization algorithm with some fixed steps. The simulation experiment results show that the proposed algorithm can quickly approach the optimal solution in the olfactory search stage and accurately search in the visual search stage, demonstrating more effective performance. 展开更多
关键词 Swarm Intelligent Optimization algorithm Fruit Fly Optimization algorithm Adaptive Step Local optimum Convergence Speed
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信号交叉口混行交通协同控制方法 被引量:2
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作者 黄秋实 王艳阳 +3 位作者 邬昌良 黄俊富 张胜根 罗浩轩 《系统仿真学报》 北大核心 2025年第1期271-283,共13页
针对信号交叉口下的混行交通,以改善交叉口的通行环境为目标,设计了一种分层解耦的信号灯-混行队列协同控制方法。在上层信号灯控制研究中,选取交叉口车辆延误时间计算模型,以车辆平均延误时间最小为目标,提出基于遗传算法的交叉口信号... 针对信号交叉口下的混行交通,以改善交叉口的通行环境为目标,设计了一种分层解耦的信号灯-混行队列协同控制方法。在上层信号灯控制研究中,选取交叉口车辆延误时间计算模型,以车辆平均延误时间最小为目标,提出基于遗传算法的交叉口信号灯上层控制策略;在下层混行队列控制研究中采用“1+N”模式,建立混行队列动力学模型,选取车辆能耗模型,以队列经济性最低为目标,提出基于最优控制的混行队列下层控制策略。在上、下层控制策略验证的基础上,对协同控制方法进行有效性和敏感性研究。研究结果表明,提出的协同控制方法在不同交通场景下,均能有效改善交叉口通行效率和车辆经济性;当最小绿灯时长和控制区长度的取值越小时,车辆平均延误时间和平均百公里油耗改善效果越好。 展开更多
关键词 协同控制 交叉口 混行队列 遗传算法 最优控制
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量子元启发式算法及其应用综述
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作者 阮宁 李淳 +2 位作者 马昊月 贾异 李涛 《计算机科学》 北大核心 2025年第10期190-200,共11页
量子元启发式算法是将量子计算应用到元启发式算法中而开发出来的。该类算法擅于求解组合和数值优化问题,具有加速收敛、增强探索和开发能力等特点,且能获得比传统元启发式算法更高的性能结果。文中主要概述和回顾量子元启发式算法的理... 量子元启发式算法是将量子计算应用到元启发式算法中而开发出来的。该类算法擅于求解组合和数值优化问题,具有加速收敛、增强探索和开发能力等特点,且能获得比传统元启发式算法更高的性能结果。文中主要概述和回顾量子元启发式算法的理论方法及其应用。首先对量子计算的基本概念和计算原理进行阐述,并分析目前量子计算领域亟需解决的挑战性问题;然后阐述6种经典量子元启发式算法运行的基本原理,分析最新的研究进展,概括它们在求解特定领域问题的优劣势,并展示量子元启发式算法在不同学科及工程场景中的应用;最后对量子元启发式算法理论方法存在的问题进行剖析与探讨,并总结未来量子元启发式算法理论和应用发展方向。 展开更多
关键词 量子计算 元启发式算法 进化计算 全局最优 智能优化
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基于原始对偶梯度算法的分布式微电网最优电压控制
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作者 张海全 纪巍 +2 位作者 陈欢颐 贺鸿鹏 徐美娇 《计算机应用与软件》 北大核心 2025年第11期285-294,共10页
为了建立一个广义的优化控制框架,提出一种基于原始对偶梯度算法的分布式微电网最优电压控制。设计一个遵循分布式发电机输出电压和无功功率容量技术约束的优化问题,从而在电压调节和无功功率共享之间实现最佳平衡,将问题转换为凸优化... 为了建立一个广义的优化控制框架,提出一种基于原始对偶梯度算法的分布式微电网最优电压控制。设计一个遵循分布式发电机输出电压和无功功率容量技术约束的优化问题,从而在电压调节和无功功率共享之间实现最佳平衡,将问题转换为凸优化问题以便于计算。进一步引入一种原始对偶梯度求解算法,从而解决目标函数不可分离、全局平均电压不可用和全局耦合无功功率约束等问题。通过测试微电网和总线分布式测试系统仿真证明了该方法的有效性。 展开更多
关键词 分布式系统 微电网 原始对偶梯度算法 最优控制
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