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Improved MOEA/D for Dynamic Weapon-Target Assignment Problem 被引量:7
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作者 Ying Zhang Rennong Yang +1 位作者 Jialiang Zuo Xiaoning Jing 《Journal of Harbin Institute of Technology(New Series)》 EI CAS 2015年第6期121-128,共8页
Conducting reasonable weapon-target assignment( WTA) with near real time can bring the maximum awards with minimum costs which are especially significant in the modern war. A framework of dynamic WTA( DWTA) model base... Conducting reasonable weapon-target assignment( WTA) with near real time can bring the maximum awards with minimum costs which are especially significant in the modern war. A framework of dynamic WTA( DWTA) model based on a series of staged static WTA( SWTA) models is established where dynamic factors including time window of target and time window of weapon are considered in the staged SWTA model. Then,a hybrid algorithm for the staged SWTA named Decomposition-Based Dynamic Weapon-target Assignment( DDWTA) is proposed which is based on the framework of multi-objective evolutionary algorithm based on decomposition( MOEA / D) with two major improvements: one is the coding based on constraint of resource to generate the feasible solutions, and the other is the tabu search strategy to speed up the convergence.Comparative experiments prove that the proposed algorithm is capable of obtaining a well-converged and well diversified set of solutions on a problem instance and meets the time demand in the battlefield environment. 展开更多
关键词 multi-objective optimization(MOP) dynamic weapon-target assignment(dwta) multi-objective evolutionary algorithm based on decomposition(MOEA/D) tabu search
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Colony location algorithm for assignment problems 被引量:3
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作者 DingweiWANG 《控制理论与应用(英文版)》 EI 2004年第2期111-116,共6页
A novel algorithm called Colony Location Algorithm (CLA) is proposed. It mimics the phenomena in biotic community that colonies of species could be located in the places most suitable to their growth. The factors work... A novel algorithm called Colony Location Algorithm (CLA) is proposed. It mimics the phenomena in biotic community that colonies of species could be located in the places most suitable to their growth. The factors working on the species location such as the nutrient of soil, resource competition between species, growth and decline process, and effect on environment were considered in CLA via the nutrient function, growth and decline rates, environment evaluation and fertilization strategy. CLA was applied to solve the classical assignment problems. The computation results show that CLA can achieve the optimal solution with higher possibility and shorter running time. 展开更多
关键词 Evolutionary computation Artificial life Bionic computation OPTIMIZATION assignment problem
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Improved Hungarian algorithm for assignment problems of serial-parallel systems 被引量:5
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作者 Tingpeng Li Yue Li Yanling Qian 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2016年第4期858-870,共13页
In order to overcome the shortcoming of the classical Hungarian algorithm that it can only solve the problems where the total cost is the sum of that of each job, an improved Hungarian algorithm is proposed and used t... In order to overcome the shortcoming of the classical Hungarian algorithm that it can only solve the problems where the total cost is the sum of that of each job, an improved Hungarian algorithm is proposed and used to solve the assignment problem of serial-parallel systems. First of all, by replacing parallel jobs with virtual jobs, the proposed algorithm converts the serial-parallel system into a pure serial system, where the classical Hungarian algorithm can be used to generate a temporal assignment plan via optimization. Afterwards, the assignment plan is validated by checking whether the virtual jobs can be realized by real jobs through local searching. If the assignment plan is not valid, the converted system will be adapted by adjusting the parameters of virtual jobs, and then be optimized again. Through iterative searching, the valid optimal assignment plan can eventually be obtained.To evaluate the proposed algorithm, the valid optimal assignment plan is applied to labor allocation of a manufacturing system which is a typical serial-parallel system. 展开更多
关键词 Hungarian algorithm assignment problem virtual job serial-parallel system optimization
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Competition assignment problem algorithm based on Hungarian method 被引量:1
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作者 KONG Chao REN Yongtai +1 位作者 GE Huiling DENG Hualing 《Journal of Northeast Agricultural University(English Edition)》 CAS 2007年第1期67-71,共5页
Traditional Hungarian method can only solve standard assignment problems, while can not solve competition assignment problems. This article emphatically discussed the difference between standard assignment problems an... Traditional Hungarian method can only solve standard assignment problems, while can not solve competition assignment problems. This article emphatically discussed the difference between standard assignment problems and competition assignment problems. The kinds of competition assignment problem algorithms based on Hungarian method and the solutions of them were studied. 展开更多
关键词 optimal assignment problem competition assignment problem Hungarian method
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Airport gate assignment problem with deep reinforcement learning 被引量:3
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作者 Zhao Jiaming Wu Wenjun +3 位作者 Liu Zhiming Han Changhao Zhang Xuanyi Zhang Yanhua 《High Technology Letters》 EI CAS 2020年第1期102-107,共6页
With the rapid development of air transportation in recent years,airport operations have attracted a lot of attention.Among them,airport gate assignment problem(AGAP)has become a research hotspot.However,the real-time... With the rapid development of air transportation in recent years,airport operations have attracted a lot of attention.Among them,airport gate assignment problem(AGAP)has become a research hotspot.However,the real-time AGAP algorithm is still an open issue.In this study,a deep reinforcement learning based AGAP(DRL-AGAP)is proposed.The optimization object is to maximize the rate of flights assigned to fixed gates.The real-time AGAP is modeled as a Markov decision process(MDP).The state space,action space,value and rewards have been defined.The DRL-AGAP algorithm is evaluated via simulation and it is compared with the flight pre-assignment results of the optimization software Gurobiand Greedy.Simulation results show that the performance of the proposed DRL-AGAP algorithm is close to that of pre-assignment obtained by the Gurobi optimization solver.Meanwhile,the real-time assignment ability is ensured by the proposed DRL-AGAP algorithm due to the dynamic modeling and lower complexity. 展开更多
关键词 AIRPORT gate assignment problem(AGAP) DEEP reinforcement learning(DRL) MARKOV decision process(MDP)
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Integrating Tabu Search in Particle Swarm Optimization for the Frequency Assignment Problem 被引量:1
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作者 Houssem Eddine Hadji Malika Babes 《China Communications》 SCIE CSCD 2016年第3期137-155,共19页
In this paper, we address one of the issues in the frequency assignment problem for cellular mobile networks in which we intend to minimize the interference levels when assigning frequencies from a limited frequency s... In this paper, we address one of the issues in the frequency assignment problem for cellular mobile networks in which we intend to minimize the interference levels when assigning frequencies from a limited frequency spectrum. In order to satisfy the increasing demand in such cellular mobile networks, we use a hybrid approach consisting of a Particle Swarm Optimization(PSO) combined with a Tabu Search(TS) algorithm. This approach takes both advantages of PSO efficiency in global optimization and TS in avoiding the premature convergence that would lead PSO to stagnate in a local minimum. Moreover, we propose a new efficient, simple, and inexpensive model for storing and evaluating solution's assignment. The purpose of this model reduces the solution's storage volume as well as the computations required to evaluate thesesolutions in comparison with the classical model. Our simulation results on the most known benchmarking instances prove the effectiveness of our proposed algorithm in comparison with previous related works in terms of convergence rate, the number of iterations, the solution storage volume and the running time required to converge to the optimal solution. 展开更多
关键词 frequency assignment problem particle swarm optimization tabu search convergence acceleration
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Solving the Unbalanced Assignment Problem: Simpler Is Better 被引量:2
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作者 Nathan Betts Francis J. Vasko 《American Journal of Operations Research》 2016年第4期296-299,共4页
Recently, Yadaiah and Haragopal published in the American Journal of Operations Research a new approach to solving the unbalanced assignment problem. They also provide a numerical example which they solve with their a... Recently, Yadaiah and Haragopal published in the American Journal of Operations Research a new approach to solving the unbalanced assignment problem. They also provide a numerical example which they solve with their approach and get a cost of 1550 which they claim is optimum. This approach might be of interest;however, their approach does not guarantee the optimal solution. In this short paper, we will show that solving this same example from the Yadaiah and Haragopal paper by using a simple textbook formulation to balance the problem and then solve it with the classic Hungarian method of Kuhn yields the true optimal solution with a cost of 1520. 展开更多
关键词 assignment problem Hungarian Method Textbook Formulation
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Troubleshooting algorithm for solving assignment problem and its applications
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作者 Li Zhou Hailin Zou +1 位作者 Yancun Yang Qian Gao 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2013年第1期165-172,共8页
A new troubleshooting algorithm for solving assignment problem based on existing algorithms is proposed, and an analysis on the related theory is given. By applying the new troubleshooting algorithm to the Lagrange re... A new troubleshooting algorithm for solving assignment problem based on existing algorithms is proposed, and an analysis on the related theory is given. By applying the new troubleshooting algorithm to the Lagrange relaxation algorithm of the multi-dimensional assignment problem of data association for multi-passive-sensor multi-target location systems, and comparing the simulation results with that of the Hungarian algorithm which is the classical optimal solving algorithm, and the multi-layer ordersearching algorithm which is a sub-optimal solving algorithm, the performance and applying conditions of the new algorithm are summarized. Theory analysis and simulation results prove the effectiveness and superiority of the new algorithm. 展开更多
关键词 assignment problem troubleshooting algorithm data association.
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Probabilistic Analysis and Multicriteria Decision for Machine Assignment Problem with General Service Times
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作者 Wang, Jing 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 1994年第1期53-61,共9页
In this paper we carried out a probabilistic analysis for a machine repair system with a general service-time distribution by means of generalized Markov renewal processes. Some formulas for the steady-state performan... In this paper we carried out a probabilistic analysis for a machine repair system with a general service-time distribution by means of generalized Markov renewal processes. Some formulas for the steady-state performance measures. such as the distribution of queue sizes, average queue length, degree of repairman utilization and so on. are then derived. Finally, the machine repair model and a multiple critcria decision-making method are applied to study machine assignment problem with a general service-time distribution to determine the optimum number of machines being serviced by one repairman. 展开更多
关键词 Machine assignment problem Queueing model Multicriteria decision Markov processes
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Solution to the quadratic assignment problem usingsemi-Lagrangian relaxation
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作者 huizhen zhang cesar beltran-royo +2 位作者 bo wang liang ma ziying zhang 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2016年第5期1063-1072,共10页
The semi-Lagrangian relaxation (SLR), a new exactmethod for combinatorial optimization problems with equality constraints,is applied to the quadratic assignment problem (QAP).A dual ascent algorithm with finite co... The semi-Lagrangian relaxation (SLR), a new exactmethod for combinatorial optimization problems with equality constraints,is applied to the quadratic assignment problem (QAP).A dual ascent algorithm with finite convergence is developed forsolving the semi-Lagrangian dual problem associated to the QAP.We perform computational experiments on 30 moderately difficultQAP instances by using the mixed integer programming solvers,Cplex, and SLR+Cplex, respectively. The numerical results notonly further illustrate that the SLR and the developed dual ascentalgorithm can be used to solve the QAP reasonably, but also disclosean interesting fact: comparing with solving the unreducedproblem, the reduced oracle problem cannot be always effectivelysolved by using Cplex in terms of the CPU time. 展开更多
关键词 quadratic assignment problem (QAP) semi-Lagrangian relaxation (SLR) Lagrangian relaxation dual ascentalgorithm.
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Generative Neural Network Based Spectrum Sharing Using Linear Sum Assignment Problems
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作者 Ahmed BZaky Joshua Zhexue Huang +1 位作者 Kaishun Wu Basem MElHalawany 《China Communications》 SCIE CSCD 2020年第2期14-29,共16页
Spectrum management and resource allocation(RA)problems are challenging and critical in a vast number of research areas such as wireless communications and computer networks.The traditional approaches for solving such... Spectrum management and resource allocation(RA)problems are challenging and critical in a vast number of research areas such as wireless communications and computer networks.The traditional approaches for solving such problems usually consume time and memory,especially for large-size problems.Recently different machine learning approaches have been considered as potential promising techniques for combinatorial optimization problems,especially the generative model of the deep neural networks.In this work,we propose a resource allocation deep autoencoder network,as one of the promising generative models,for enabling spectrum sharing in underlay device-to-device(D2D)communication by solving linear sum assignment problems(LSAPs).Specifically,we investigate the performance of three different architectures for the conditional variational autoencoders(CVAE).The three proposed architecture are the convolutional neural network(CVAECNN)autoencoder,the feed-forward neural network(CVAE-FNN)autoencoder,and the hybrid(H-CVAE)autoencoder.The simulation results show that the proposed approach could be used as a replacement of the conventional RA techniques,such as the Hungarian algorithm,due to its ability to find solutions of LASPs of different sizes with high accuracy and very fast execution time.Moreover,the simulation results reveal that the accuracy of the proposed hybrid autoencoder architecture outperforms the other proposed architectures and the state-of-the-art DNN techniques. 展开更多
关键词 autoencoder linear sum assignment problems generative models resource allocation
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Components Assignment Problem for Multi-Source Multi-Sink Flow Networks with Reliability and Budget Constraints
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作者 Noha Nasr Elden Moatamad Hassan Mohamed Abd El-Aziz 《Journal of Computer and Communications》 2022年第6期99-111,共13页
System reliability optimization problem of multi-source multi-sink flow network is defined by searching the optimal components that maximize the reliability and minimize the total assignment cost. Therefore, a genetic... System reliability optimization problem of multi-source multi-sink flow network is defined by searching the optimal components that maximize the reliability and minimize the total assignment cost. Therefore, a genetic-based approach is proposed to solve the components assignment problem under budget constraint. The mathematical model of the optimization problem is presented and solved by the proposed genetic-based approach. The proposed approach is based on determining the optimal set of lower boundary points that maximize the system reliability such that the total assignment cost does not exceed the specified budget. Finally, to evaluate our approach, we applied it to various network examples with different numbers of available components;two-source two-sink network and three-source two-sink network. 展开更多
关键词 Multi-Source Multi-Sink Stochastic-Flow Networks System Reliability Optimization Components assignment problem
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Proposed Heuristic Method for Solving Assignment Problems
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作者 S. K. Amponsah D. Otoo +1 位作者 S. Salhi E. Quayson 《American Journal of Operations Research》 2016年第6期436-441,共6页
Assignment of jobs to workers, contract to contractors undergoing a bidding process, assigning nurses to duty post, or time tabling for teachers in school and many more have become a growing concern to both management... Assignment of jobs to workers, contract to contractors undergoing a bidding process, assigning nurses to duty post, or time tabling for teachers in school and many more have become a growing concern to both management and sector leaders alike. Hungarian algorithm has been the most successful tool for solving such problems. The authors have proposed a heuristic method for solving assignment problems with less computing time in comparison with Hungarian algorithm that gives comparable results with an added advantage of easy implementation. The proposed heuristic method is used to compute some bench mark problems. 展开更多
关键词 assignment problem Hungarian Algorithm HEURISTIC
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A New Approach of Solving Single Objective Unbalanced Assignment Problem
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作者 Ventepaka Yadaiah V. V. Haragopal 《American Journal of Operations Research》 2016年第1期81-89,共9页
In this paper, we discuss a new approach for solving an unbalanced assignment problem. A Lexi-search algorithm is used to assign all the jobs to machines optimally. The results of new approach are compared with existi... In this paper, we discuss a new approach for solving an unbalanced assignment problem. A Lexi-search algorithm is used to assign all the jobs to machines optimally. The results of new approach are compared with existing approaches, and this approach outperforms other methods. Finally, numerical example (Table 1) has been given to show the efficiency of the proposed methodology. 展开更多
关键词 assignment problem Lexi-Search Algorithm Jobs Clubbing Method
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A Heuristic Algorithm for Solving the Faculty Assignment Problem
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作者 Manar I. Hosny 《通讯和计算机(中英文版)》 2013年第3期287-294,共8页
关键词 启发式算法 分配问题 沙特阿拉伯 IT部门 师资 算法设计 实验课 毕业设计
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New Heuristic Rounding Approaches to the Quadratic Assignment Problem
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作者 Wajeb Gharibi Yong Xia 《通讯和计算机(中英文版)》 2010年第4期15-18,共4页
关键词 二次分配问题 四舍五入 启发式方法 计算机科学 组合优化 优化模型 最佳参数 运筹学
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考虑碳排放的交通流分配与交通系统最优模型及算法研究
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作者 姚明山 赵磊 朱道立 《管理工程学报》 北大核心 2026年第1期274-286,共13页
二氧化碳和一氧化碳会对人体健康和生态环境产生严重危害,而道路交通是二氧化碳和一氧化碳排放的主要源头之一。因此,考虑车辆碳排放的交通分配问题是可持续发展时代交通科学领域的重要科学问题,主要包括:考虑碳排放的环境交通流分配问... 二氧化碳和一氧化碳会对人体健康和生态环境产生严重危害,而道路交通是二氧化碳和一氧化碳排放的主要源头之一。因此,考虑车辆碳排放的交通分配问题是可持续发展时代交通科学领域的重要科学问题,主要包括:考虑碳排放的环境交通流分配问题(environmental traffic assignment problem,ETAP)和环境交通系统最优问题(environmental system optimization,ESOP)。与传统的交通分配问题(traffic assignment problem,TAP)和交通系统最优问题(system optimization problem,SOP)不同的是,ETAP和ESOP问题属于带交通网络约束的非凸优化问题,求解难度较大。这使得对ETAP和ESOP问题的求解方法设计成为当今交通科学与决策科学界的前沿难题。本文将基于作者提出的带约束的非凸最优化一阶原始/对偶方法理论,分析ETAP和ESOP问题的数学性质,并设计可用于求解ETAP和ESOP问题的算法,证明该算法能够收敛到ETAP问题的均衡点和ESOP问题的最小点。最后,本文在一个小型交通网络和经典的Nguyen和Dupuis交通网络上进行仿真实验,验证本文提出的算法能有效求解ETAP和ESOP问题。此外,通过对小型交通网络的案例分析,本文揭示了ETAP中的一些重要现象:ETAP部分局部极小均衡点存在一个稳定区域,当起始点位于该区域时,算法将迅速收敛到该均衡点;而算法一定不会收敛到ETAP的某个局部极大均衡点,除非起始点选择该均衡点。 展开更多
关键词 环境交通分配问题 环境交通系统最优问题 非凸约束最优化算法
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基于图注意力网络的无人机蜂群作战目标分配
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作者 朱政 魏喜庆 +1 位作者 李瑞康 宋申民 《兵工学报》 北大核心 2026年第1期235-243,共9页
近年来,随着无人机集群在智能化军事作战中的广泛应用,复杂动态环境下的蜂群目标分配问题成为军事运筹研究的重要方向。传统方法在面对大规模、实时的无人机蜂群目标分配问题时,常面临精确算法计算开销大和启发式方法解质量不足的矛盾... 近年来,随着无人机集群在智能化军事作战中的广泛应用,复杂动态环境下的蜂群目标分配问题成为军事运筹研究的重要方向。传统方法在面对大规模、实时的无人机蜂群目标分配问题时,常面临精确算法计算开销大和启发式方法解质量不足的矛盾。以最小化敌方目标剩余价值为目标,构建目标分配模型,将无人机蜂群与敌方目标建模为二分图节点,生成结构化训练数据。在此基础上设计并训练一种改进的图注意力网络,融合节点属性与边特征实现高效分配。仿真实验结果表明,新方法在解质量和求解效率方面均优于传统方法,具备良好的泛化能力,适用于大规模实时作战场景。 展开更多
关键词 无人机蜂群 目标分配问题 图注意力网络 二分图 大规模场景 实时决策
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L(2,1)-labeling problem on distance graphs 被引量:1
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作者 陶昉昀 顾国华 《Journal of Southeast University(English Edition)》 EI CAS 2004年第1期122-125,共4页
L (2, 1)-labeling number, λ(G( Z , D)) , of distance graph G( Z , D) is studied. For general finite distance set D , it is shown that 2D+2≤λ(G( Z , D))≤D 2+3D. Furthermore, λ(G( Z , D)) ≤8 when... L (2, 1)-labeling number, λ(G( Z , D)) , of distance graph G( Z , D) is studied. For general finite distance set D , it is shown that 2D+2≤λ(G( Z , D))≤D 2+3D. Furthermore, λ(G( Z , D)) ≤8 when D consists of two prime positive odd integers is proved. Finally, a new concept to study the upper bounds of λ(G) for some special D is introduced. For these sets, the upper bound is improved to 7. 展开更多
关键词 L(2 1)-labeling distance graph channel assignment problem
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Dynamic Weapon Target Assignment Based on Intuitionistic Fuzzy Entropy of Discrete Particle Swarm 被引量:18
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作者 Yi Wang Jin Li +1 位作者 Wenlong Huang Tong Wen 《China Communications》 SCIE CSCD 2017年第1期169-179,共11页
Aiming at the problems of convergence-slow and convergence-free of Discrete Particle Swarm Optimization Algorithm(DPSO) in solving large scale or complicated discrete problem, this article proposes Intuitionistic Fuzz... Aiming at the problems of convergence-slow and convergence-free of Discrete Particle Swarm Optimization Algorithm(DPSO) in solving large scale or complicated discrete problem, this article proposes Intuitionistic Fuzzy Entropy of Discrete Particle Swarm Optimization(IFDPSO) and makes it applied to Dynamic Weapon Target Assignment(WTA). First, the strategy of choosing intuitionistic fuzzy parameters of particle swarm is defined, making intuitionistic fuzzy entropy as a basic parameter for measure and velocity mutation. Second, through analyzing the defects of DPSO, an adjusting parameter for balancing two cognition, velocity mutation mechanism and position mutation strategy are designed, and then two sets of improved and derivative algorithms for IFDPSO are put forward, which ensures the IFDPSO possibly search as much as possible sub-optimal positions and its neighborhood and the algorithm ability of searching global optimal value in solving large scale 0-1 knapsack problem is intensified. Third, focusing on the problem of WTA, some parameters including dynamic parameter for shifting firepower and constraints are designed to solve the problems of weapon target assignment. In addition, WTA Optimization Model with time and resource constraints is finally set up, which also intensifies the algorithm ability of searching global and local best value in the solution of WTA problem. Finally, the superiority of IFDPSO is proved by several simulation experiments. Particularly, IFDPSO, IFDPSO1~IFDPSO3 are respectively effective in solving large scale, medium scale or strict constraint problems such as 0-1 knapsack problem and WTA problem. 展开更多
关键词 intuitionistic fuzzy entropy discrete particle swarm optimization algorithm 0-1 knapsack problem weapon target assignment
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