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Improved ant colony optimization algorithm for the traveling salesman problems 被引量:22
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作者 Rongwei Gan Qingshun Guo +1 位作者 Huiyou Chang Yang Yi 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2010年第2期329-333,共5页
Ant colony optimization (ACO) is a new heuristic algo- rithm which has been proven a successful technique and applied to a number of combinatorial optimization problems. The traveling salesman problem (TSP) is amo... Ant colony optimization (ACO) is a new heuristic algo- rithm which has been proven a successful technique and applied to a number of combinatorial optimization problems. The traveling salesman problem (TSP) is among the most important combinato- rial problems. An ACO algorithm based on scout characteristic is proposed for solving the stagnation behavior and premature con- vergence problem of the basic ACO algorithm on TSP. The main idea is to partition artificial ants into two groups: scout ants and common ants. The common ants work according to the search manner of basic ant colony algorithm, but scout ants have some differences from common ants, they calculate each route's muta- tion probability of the current optimal solution using path evaluation model and search around the optimal solution according to the mutation probability. Simulation on TSP shows that the improved algorithm has high efficiency and robustness. 展开更多
关键词 ant colony optimization heuristic algorithm scout ants path evaluation model traveling salesman problem.
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Weapon target assignment problem satisfying expected damage probabilities based on ant colony algorithm 被引量:26
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作者 Wang Yanxia Qian Longjun Guo Zhi Ma Lifeng 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2008年第5期939-944,共6页
A weapon target assignment (WTA) model satisfying expected damage probabilities with an ant colony algorithm is proposed. In order to save armament resource and attack the targets effectively, the strategy of the we... A weapon target assignment (WTA) model satisfying expected damage probabilities with an ant colony algorithm is proposed. In order to save armament resource and attack the targets effectively, the strategy of the weapon assignment is that the target with greater threat degree has higher priority to be intercepted. The effect of this WTA model is not maximizing the damage probability but satisfying the whole assignment result. Ant colony algorithm has been successfully used in many fields, especially in combination optimization. The ant colony algorithm for this WTA problem is described by analyzing path selection, pheromone update, and tabu table update. The effectiveness of the model and the algorithm is demonstrated with an example. 展开更多
关键词 weapon target assignment ant colony algorithm optimization.
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Ant colony optimization algorithm and its application to Neuro-Fuzzy controller design 被引量:11
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作者 Zhao Baojiang Li Shiyong 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2007年第3期603-610,共8页
An adaptive ant colony algorithm is proposed based on dynamically adjusting the strategy of updating trail information. The algorithm can keep good balance between accelerating convergence and averting precocity and s... An adaptive ant colony algorithm is proposed based on dynamically adjusting the strategy of updating trail information. The algorithm can keep good balance between accelerating convergence and averting precocity and stagnation. The results of function optimization show that the algorithm has good searching ability and high convergence speed. The algorithm is employed to design a neuro-fuzzy controller for real-time control of an inverted pendulum. In order to avoid the combinatorial explosion of fuzzy rules due tσ multivariable inputs, a state variable synthesis scheme is employed to reduce the number of fuzzy rules greatly. The simulation results show that the designed controller can control the inverted pendulum successfully. 展开更多
关键词 neuro-fuzzy controller ant colony algorithm function optimization genetic algorithm inverted pen-dulum system.
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Ant colony ATTA clustering algorithm of rock mass structural plane in groups 被引量:11
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作者 李夕兵 王泽伟 +1 位作者 彭康 刘志祥 《Journal of Central South University》 SCIE EI CAS 2014年第2期709-714,共6页
Based on structural surface normal vector spherical distance and the pole stereographic projection Euclidean distance,two distance functions were established.The cluster analysis of structure surface was conducted by ... Based on structural surface normal vector spherical distance and the pole stereographic projection Euclidean distance,two distance functions were established.The cluster analysis of structure surface was conducted by the use of ATTA clustering methods based on ant colony piles,and Silhouette index was introduced to evaluate the clustering effect.The clustering analysis of the measured data of Sanshandao Gold Mine shows that ant colony ATTA-based clustering method does better than K-mean clustering analysis.Meanwhile,clustering results of ATTA method based on pole Euclidean distance and ATTA method based on normal vector spherical distance have a great consistence.The clustering results are most close to the pole isopycnic graph.It can efficiently realize grouping of structural plane and determination of the dominant structural surface direction.It is made up for the defects of subjectivity and inaccuracy in icon measurement approach and has great engineering value. 展开更多
关键词 rock mass discontinuity cluster analysis ant colony ATTA algorithm distance function Silhouette index
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Spatial quality evaluation for drinking water based on GIS and ant colony clustering algorithm 被引量:4
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作者 侯景伟 米文宝 李陇堂 《Journal of Central South University》 SCIE EI CAS 2014年第3期1051-1057,共7页
To develop a better approach for spatial evaluation of drinking water quality, an intelligent evaluation method integrating a geographical information system(GIS) and an ant colony clustering algorithm(ACCA) was used.... To develop a better approach for spatial evaluation of drinking water quality, an intelligent evaluation method integrating a geographical information system(GIS) and an ant colony clustering algorithm(ACCA) was used. Drinking water samples from 29 wells in Zhenping County, China, were collected and analyzed. 35 parameters on water quality were selected, such as chloride concentration, sulphate concentration, total hardness, nitrate concentration, fluoride concentration, turbidity, pH, chromium concentration, COD, bacterium amount, total coliforms and color. The best spatial interpolation methods for the 35 parameters were found and selected from all types of interpolation methods in GIS environment according to the minimum cross-validation errors. The ACCA was improved through three strategies, namely mixed distance function, average similitude degree and probability conversion functions. Then, the ACCA was carried out to obtain different water quality grades in the GIS environment. In the end, the result from the ACCA was compared with those from the competitive Hopfield neural network(CHNN) to validate the feasibility and effectiveness of the ACCA according to three evaluation indexes, which are stochastic sampling method, pixel amount and convergence speed. It is shown that the spatial water quality grades obtained from the ACCA were more effective, accurate and intelligent than those obtained from the CHNN. 展开更多
关键词 geographical information system (GIS) ant colony clustering algorithm (ACCA) quality evaluation drinking water spatial analysis
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Research on UAV cloud control system based on ant colony algorithm 被引量:3
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作者 ZHANG Lanyong ZHANG Ruixuan 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2022年第4期805-811,共7页
In the cloud era, the control objects are becoming larger and the information processing is more complex, and it is difficult for traditional control systems to process massive data in a timely manner. In view of the ... In the cloud era, the control objects are becoming larger and the information processing is more complex, and it is difficult for traditional control systems to process massive data in a timely manner. In view of the difficulty of data processing in the cloud era, it is extremely important to perform massive data operations through cloud servers. Unmanned aeriel vehicle(UAV) control is the representative of the intelligent field. Based on the ant colony algorithm and incorporating the potential field method, an improved potential field ant colony algorithm is designed. To deal with the path planning problem of UAVs, the potential field ant colony algorithm shortens the optimal path distance by 6.7%, increases the algorithm running time by39.3%, and increases the maximum distance by 24.1% compared with the previous improvement. The cloud server is used to process the path problem of the UAV and feedback the calculation results in real time. Simulation experiments verify the effectiveness of the new algorithm in the cloud environment. 展开更多
关键词 ant colony algorithm potential field method cloud server path planning
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Research on Data Routing Model Based on Ant Colony Algorithms 被引量:1
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作者 龚跃 吴航 +2 位作者 鲍杰 王君军 张艳秋 《Defence Technology(防务技术)》 SCIE EI CAS 2010年第4期269-272,共4页
Improved traditional ant colony algorithms,a data routing model used to the data remote exchange on WAN was presented.In the model,random heuristic factors were introduced to realize multi-path search.The updating mod... Improved traditional ant colony algorithms,a data routing model used to the data remote exchange on WAN was presented.In the model,random heuristic factors were introduced to realize multi-path search.The updating model of pheromone could adjust the pheromone concentration on the optimal path according to path load dynamically to make the system keep load balance.The simulation results show that the improved model has a higher performance on convergence and load balance. 展开更多
关键词 computer software data transmission ant colony algorithm routing model
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Introduction to Ant Colony Algorithm and Its Application in CIMS
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作者 WANG Jian, WANG Yue-sheng, ZHOU Ya-jun (Department of Automation, Hangzhou Institute of Electronic and Engin eering, Hangzhou 310037, China) 《厦门大学学报(自然科学版)》 CAS CSCD 北大核心 2002年第S1期182-,共1页
Ant colony algorithm is a novel simulated ecosystem e volutionary algorithm, which is proposed firstly by Italian scholars M.Dorigo, A . Colormi and V. Maniezzo. Enlightened by the process of ants searching for food ,... Ant colony algorithm is a novel simulated ecosystem e volutionary algorithm, which is proposed firstly by Italian scholars M.Dorigo, A . Colormi and V. Maniezzo. Enlightened by the process of ants searching for food , scholars bring forward this new evolutionary algorithm. This algorithm has sev eral characteristics such as positive feedback, distributed computing and stro nger robustness. Positive feedback and distributed computing make it easier to find better solutions. Based on these characteristics, this algorithm provides a possible way for complicated combinatorial optimization problems, especially i n the field of discrete system. After a brief review on the essential principle, the research state of ant colony algorithm, this paper especially discusses the application of ant colony algorithm in CIMS. 展开更多
关键词 ant colony algorithm CIMS combinatorial optimiz ation
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Using Data Mining to Find Patterns in Ant Colony Algorithm Solutions to the Travelling Salesman Problem
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作者 阎世梁 王银玲 《现代电子技术》 2007年第5期117-119,共3页
Travelling Salesman Problem(TSP) is a classical optimization problem and it is one of a class of NP-Problem.The purposes of this work is to apply data mining methodologies to explore the patterns in data generated by ... Travelling Salesman Problem(TSP) is a classical optimization problem and it is one of a class of NP-Problem.The purposes of this work is to apply data mining methodologies to explore the patterns in data generated by an Ant Colony Algorithm(ACA) performing a searching operation and to develop a rule set searcher which approximates the ACA′s searcher.An attribute-oriented induction methodology was used to explore the relationship between an operations′ sequence and its attributes and a set of rules has been developed.At the end of this paper,the experimental results have shown that the proposed approach has good performance with respect to the quality of solution and the speed of computation. 展开更多
关键词 数据挖掘 数据管理系统 数据库 数据分析
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Efficiency improvement of ant colony optimization in solving the moderate LTSP 被引量:1
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作者 Munan Li 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2015年第6期1301-1309,共9页
In solving small- to medium-scale travelling salesman problems (TSPs) of both symmetric and asymmetric types, the traditional ant colony optimization (ACO) algorithm could work well, providing high accuracy and sa... In solving small- to medium-scale travelling salesman problems (TSPs) of both symmetric and asymmetric types, the traditional ant colony optimization (ACO) algorithm could work well, providing high accuracy and satisfactory efficiency. However, when the scale of the TSP increases, ACO, a heuristic algorithm, is greatly challenged with respect to accuracy and efficiency. A novel pheromone-trail updating strategy that moderately reduces the iteration time required in real optimization problem-solving is proposed. In comparison with the traditional strategy of the ACO in several experiments, the proposed strategy shows advantages in performance. Therefore, this strategy of pheromone-trail updating is proposed as a valuable approach that reduces the time-complexity and increases its efficiency with less iteration time in real optimization applications. Moreover, this strategy is especially applicable in solving the moderate large-scale TSPs based on ACO. 展开更多
关键词 ant colony optimization (ACO) travelling salesmanproblem (TSP) time-complexity of algorithm pheromone-trail up-dating.
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再生稻头季低碾压收获作业路径规划技术研究 被引量:2
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作者 胡炼 张鸿 +6 位作者 何杰 满忠贤 岳孟东 屈高凯 唐启源 黄培奎 罗锡文 《农业机械学报》 北大核心 2025年第2期19-27,共9页
路径规划是决定再生稻头季收获作业效率和质量的关键因素之一。目前,无人农机在作业区域内的全覆盖路径规划技术研究中,较少有考虑收获机在田间收获时对再生稻的碾压问题,为此本文开展减少碾压的再生稻收获路径规划研究。通过分析农田... 路径规划是决定再生稻头季收获作业效率和质量的关键因素之一。目前,无人农机在作业区域内的全覆盖路径规划技术研究中,较少有考虑收获机在田间收获时对再生稻的碾压问题,为此本文开展减少碾压的再生稻收获路径规划研究。通过分析农田信息、待作业区域和卸粮等,将再生稻收获卸粮路径规划问题转化为带有容量约束的车辆路径问题(CVRP)。以收获机最小碾压面积和最短总路径为目标,构建再生稻收获路径数学模型。提出再生稻少碾压路径规划混合算法,采用传统蚁群算法(ACO)和2-opt算法获得最优路径。以再生稻无人驾驶收获机为对象,设计直线路径规划田间试验、地头转向路径以及卸粮路径规划田间试验和全环节田间作业试验,采用自动驾驶系统进行田间试验,考察收获机田间碾压率。结果表明,直线跟踪平均绝对误差为3.51 cm,最大偏差为8.24 cm,直线段作业碾压率为17.55%。地头区域碾压率下降52.2%。本研究设计的路径规划全田碾压率为27.42%,满足再生稻特殊的作业要求。 展开更多
关键词 再生稻 收获机 无人驾驶 路径规划 蚁群算法 2-opt算法
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双机器人的任务分配和协同作业算法研究
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作者 李铁军 赵博言 +2 位作者 刘今越 贾晓辉 唐春瑞 《控制工程》 北大核心 2025年第4期577-585,共9页
针对双机器人难以实现合理的任务分配和协同作业的问题,提出了一种基于工作量平衡机制与主从协同蚁群优化算法完成双机器人的任务分配和协同作业的方法。首先,基于任务点集合建立不平衡任务指派模型,任务分配阶段通过迭代路径规划算法... 针对双机器人难以实现合理的任务分配和协同作业的问题,提出了一种基于工作量平衡机制与主从协同蚁群优化算法完成双机器人的任务分配和协同作业的方法。首先,基于任务点集合建立不平衡任务指派模型,任务分配阶段通过迭代路径规划算法平衡两机器人的工作量。然后,通过主从协同蚁群优化算法解算机器人之间避免干涉且保持工作量最小的多目标协同作业优化模型。最后,结合钢筋绑扎场景展开实验,实验结果表明,所提方法可以在两机器人之间实现合理的任务分配,减少二者的工作差异量,使其高效地完成钢筋绑扎作业,并且可以有效避免机器人在作业过程中发生干涉。 展开更多
关键词 双机器人 任务分配 主从协同 蚁群优化算法
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基于ARIMA与GGACO算法的ETL任务调度机制研究
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作者 周金治 刘艺涵 吴斌 《控制工程》 北大核心 2025年第2期208-215,共8页
随着抽取-转换-加载(extraction-transformation-loading,ETL)系统的ETL任务量增多,任务复杂度和波动性也随之提升,现有的ETL任务调度机制难以满足调度需求,如时间片轮转法受限于弹性调度能力弱、效率低下等缺点。为研究如何提升ETL任... 随着抽取-转换-加载(extraction-transformation-loading,ETL)系统的ETL任务量增多,任务复杂度和波动性也随之提升,现有的ETL任务调度机制难以满足调度需求,如时间片轮转法受限于弹性调度能力弱、效率低下等缺点。为研究如何提升ETL任务调度机制的弹性调度能力以及执行效率,提出了一种基于整合移动平均自回归(autoregressive integrated moving average,ARIMA)模型与贪心-遗传-蚁群优化(greedy-genetic-ant colony optimization,GGACO)算法的ETL任务调度机制。初期,建立ARIMA模型并弹性地结合贪心算法计算初始解;中期,利用遗传算法的全局快收敛的特性结合初始解圈定最优解的大致范围;最后,利用蚁群优化算法的局部快速收敛性进行最优解搜索。实验结果表明:该调度机制能够弹性地指导任务调度尽可能地找到最优解,减少任务的执行时间,以及尽可能实现更高效的负载均衡。 展开更多
关键词 弹性调度 ARIMA 贪心算法 遗传算法 蚁群优化算法
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考虑灾民行动力差异的多模式协同疏散路径规划
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作者 陈娜 刘一鸣 +1 位作者 秦向南 刘军 《中国安全生产科学技术》 北大核心 2025年第7期182-190,共9页
为提高自然灾害发生后大规模灾民的疏散效率,保证灾民的生命财产安全,以疏散完成时间最短和平均风险度最小为目标,提出考虑私家车和应急公交车协同疏散的应急疏散路径规划模型。模型将灾民分为高行动力和低行动力2个群体,采用不同的疏... 为提高自然灾害发生后大规模灾民的疏散效率,保证灾民的生命财产安全,以疏散完成时间最短和平均风险度最小为目标,提出考虑私家车和应急公交车协同疏散的应急疏散路径规划模型。模型将灾民分为高行动力和低行动力2个群体,采用不同的疏散策略,并以某地突发泥石流为例,采用改进蚁群算法求解该模型。研究结果表明:相较于蚁群算法和遗传算法,改进蚁群算法能有效求解该模型;在疏散过程中多模式协同疏散具有更高的疏散效率,与只考虑应急公交车的疏散方案相比,案例的平均疏散完成时间缩短了11.6 min,平均风险度也更低,且在相同的时间段内,所疏散的人数也更多。研究结果可为突发事件应急疏散决策提供参考。 展开更多
关键词 人群行动力 多模式协同 应急疏散 路径规划 改进蚁群算法
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基于蚁群-动态窗口法的无人驾驶汽车动态路径规划
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作者 郑琰 席宽 +2 位作者 巴文婷 肖玉杰 余伟 《南京信息工程大学学报》 北大核心 2025年第2期256-264,共9页
针对传统路径规划算法在无人驾驶汽车应用中搜索效率低、距离较长和路径不平滑的问题进行改进,使用改进蚁群算法最优路径的关键节点替代动态窗口法的局部目标点,并在动态窗口法评价函数中加入目标距离评价子函数,提高路径规划的效率和... 针对传统路径规划算法在无人驾驶汽车应用中搜索效率低、距离较长和路径不平滑的问题进行改进,使用改进蚁群算法最优路径的关键节点替代动态窗口法的局部目标点,并在动态窗口法评价函数中加入目标距离评价子函数,提高路径规划的效率和平滑性,同时采用路径决策方法解决全局路径失效问题,使车辆摆脱障碍困境,满足路径规划安全性的要求.改进后的蚁群算法利用起止点的位置信息使初始信息素分布不均匀,减少搜索初期阶段的时间消耗;通过维护全局最优路径和强化优秀局部路径的信息素浓度,优化信息素更新机制,提高路径探索效率;对规划路径进行二次优化,优化节点和冗余转折点,减少路径长度.仿真结果表明,相比传统路径规划算法,利用本文提出的融合算法所得到的路径在距离、平滑度和收敛性方面都具有更好的表现,且符合无人驾驶汽车安全行驶的要求. 展开更多
关键词 路径规划 蚁群算法 动态窗口法 动态避障 融合算法
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基于多无人机协同的林火安全探测及人员疏散
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作者 耿鹏 杨豪杰 +1 位作者 薛芳琳 柳艳 《中国安全科学学报》 北大核心 2025年第4期43-50,共8页
针对当前林火频发背景下无人探测系统缺失及火灾失控后人员疏散效率低的问题,提出一种基于多无人机(MUAVs)协同的林火安全探测方法和避难所选址优化策略。在NetLogo平台上构建多因素耦合的森林火灾动态蔓延模型;改进基于蚁群算法的MUAV... 针对当前林火频发背景下无人探测系统缺失及火灾失控后人员疏散效率低的问题,提出一种基于多无人机(MUAVs)协同的林火安全探测方法和避难所选址优化策略。在NetLogo平台上构建多因素耦合的森林火灾动态蔓延模型;改进基于蚁群算法的MUAVs协同搜索机制,该机制通过引入吸引信息素(引导火点聚集区域搜索)与排斥信息素(避免重复路径),优化无人机(UAV)飞行方向转移概率,并建立含避障功能及载水量-速度约束的飞行模型;结合希腊罗德岛地理信息系统(GIS)数据,构建人员疏散动态仿真环境。结果表明:改进蚁群算法在株树密度50%与60%场景下,收敛时间分别较传统算法缩短15%与14%,搜索覆盖率提升35.02%与32.16%;经过对避难所选址进行优化,基于A算法的疏散策略使整体死亡率降低2.525%。 展开更多
关键词 森林火灾 多无人机(MUAVs) 人员疏散 火点探测 改进蚁群算法 A算法
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基于混合遗传蚁群优化随机森林算法的激光熔覆Ni60裂纹预测与工艺参数优化
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作者 李涛 邓林辉 +2 位作者 莫彬 石非凡 刘伟嵬 《中国机械工程》 北大核心 2025年第6期1322-1328,1337,共8页
为了探究激光熔覆Ni60过程中熔覆层裂纹与加工工艺参数之间的复杂非线性映射关系,采用熵值法结合TOPSIS综合评价法对熔覆层裂纹进行综合表征评价,并使用混合遗传蚁群算法(HGA-ACO)优化随机森林算法(RFA)超参数,搭建工艺参数与裂纹评价... 为了探究激光熔覆Ni60过程中熔覆层裂纹与加工工艺参数之间的复杂非线性映射关系,采用熵值法结合TOPSIS综合评价法对熔覆层裂纹进行综合表征评价,并使用混合遗传蚁群算法(HGA-ACO)优化随机森林算法(RFA)超参数,搭建工艺参数与裂纹评价指标间预测模型,最后使用遗传算法进行工艺参数反向寻优。研究结果表明:与ACO-RFA模型相比,HGA-ACO-RFA在预测精度与评价指标方面有显著改善,反向寻优获得的最优工艺参数可制备出几乎无裂纹的熔覆层。 展开更多
关键词 激光熔覆 裂纹 评价方法 混合遗传蚁群算法 随机森林算法
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改进蚁群算法在移动机器人路径规划中的研究
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作者 孟文俊 席超群 +1 位作者 王荣鑫 赵晓霞 《机械设计与制造》 北大核心 2025年第5期322-326,共5页
针对基本蚁群算法在移动机器人路径规划中收敛速度慢、易陷入局部最优等问题,提出了一种改进的蚁群算法。该方法设置矩形优选区域,并在区域内增加不同初始信息素浓度,避免初期盲目性搜索;路径节点选择采用伪随机转移策略,依据迭代次数... 针对基本蚁群算法在移动机器人路径规划中收敛速度慢、易陷入局部最优等问题,提出了一种改进的蚁群算法。该方法设置矩形优选区域,并在区域内增加不同初始信息素浓度,避免初期盲目性搜索;路径节点选择采用伪随机转移策略,依据迭代次数的变化自适应调整随机或确定选择的比例;信息素挥发因子随二次函数动态调整变化,提高搜索效率;将所得最优路径再次规划,减少转角次数。仿真结果表明,该算法的寻优能力和收敛速度有了很大的提高,验证了该算法的有效性和优越性。 展开更多
关键词 路径规划 蚁群算法 移动机器人 伪随机转移策略 信息素挥发因子
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考虑飞机除冰任务的除冰车路径规划模型研究
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作者 徐一旻 王台玉冰 +2 位作者 吕伟 刘鸣秋 吴佳莉 《中国安全生产科学技术》 北大核心 2025年第8期181-188,共8页
为应对冻雨天气下机场除冰作业中车辆调度效率低、动态避障能力不足及多约束条件耦合优化困难等问题,提出1种基于混合蚁群算法的机场除冰车辆路径规划与动态调度优化模型。首先通过栅格化建模技术,将机场CAD地图转化为离散网格空间,综... 为应对冻雨天气下机场除冰作业中车辆调度效率低、动态避障能力不足及多约束条件耦合优化困难等问题,提出1种基于混合蚁群算法的机场除冰车辆路径规划与动态调度优化模型。首先通过栅格化建模技术,将机场CAD地图转化为离散网格空间,综合考虑障碍物动态分布、航班起飞优先级、除冰液有效时间窗、车辆容量限制等约束,构建多目标优化函数。其次,基于混合蚁群算法的全局寻优能力与A^(*)算法的局部路径优化特性,实现复杂环境下路径规划与避障的协同控制。实验基于真实机场脱敏地图构建仿真场景,划分20个区域并标注所有停机位坐标,验证了模型的有效性和鲁棒性。研究结果表明:该模型在确保航班时刻表约束的前提下,总行驶距离减少68%,航班延误时间减少90%,有效规避障碍物膨胀区边界的同时能动态调整多车辆协作路径。研究结果可为冻雨天气下机场除冰作业提供兼顾全局最优性与动态适应性的解决方案。 展开更多
关键词 路径规划 机场除冰车辆 动态调度 混合蚁群算法 多目标优化
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Bayesian-based ant colony optimization algorithm for edge detection
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作者 YU Yongbin ZHONG Yuanjingyang +6 位作者 FENG Xiao WANG Xiangxiang FAVOUR Ekong ZHOU Chen CHENG Man WANG Hao WANG Jingya 《Journal of Systems Engineering and Electronics》 2025年第4期892-902,共11页
Ant colony optimization(ACO)is a random search algorithm based on probability calculation.However,the uninformed search strategy has a slow convergence speed.The Bayesian algorithm uses the historical information of t... Ant colony optimization(ACO)is a random search algorithm based on probability calculation.However,the uninformed search strategy has a slow convergence speed.The Bayesian algorithm uses the historical information of the searched point to determine the next search point during the search process,reducing the uncertainty in the random search process.Due to the ability of the Bayesian algorithm to reduce uncertainty,a Bayesian ACO algorithm is proposed in this paper to increase the convergence speed of the conventional ACO algorithm for image edge detection.In addition,this paper has the following two innovations on the basis of the classical algorithm,one of which is to add random perturbations after completing the pheromone update.The second is the use of adaptive pheromone heuristics.Experimental results illustrate that the proposed Bayesian ACO algorithm has faster convergence and higher precision and recall than the traditional ant colony algorithm,due to the improvement of the pheromone utilization rate.Moreover,Bayesian ACO algorithm outperforms the other comparative methods in edge detection task. 展开更多
关键词 ant colony optimization(ACO) Bayesian algorithm edge detection transfer function.
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