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基于NSGA-Ⅱ-SA算法的外协云服务组合优选 被引量:3
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作者 冯晨 吉卫喜 +1 位作者 方磊 陈琛 《现代制造工程》 CSCD 北大核心 2022年第3期19-28,共10页
针对云制造环境下外协服务资源组合如何优化选择这一难题,建立了以服务时间、服务成本、服务可靠性和服务可信性为优化目标的外协云服务组合优选模型。首先在改进非支配排序遗传算法(Non-dominated Sorting Genetic Algorithm-Ⅱ,NSGA-... 针对云制造环境下外协服务资源组合如何优化选择这一难题,建立了以服务时间、服务成本、服务可靠性和服务可信性为优化目标的外协云服务组合优选模型。首先在改进非支配排序遗传算法(Non-dominated Sorting Genetic Algorithm-Ⅱ,NSGA-Ⅱ)的基础上,引入融合邻域搜索与模拟退火(Simulated Annealing,SA)算法的局部搜索策略,提出一种混合多目标进化算法即NSGA-Ⅱ-SA算法对模型进行求解。然后采用考虑用户偏好的优选策略对算法结果进行优选,从而得出最符合用户需求的高质量外协云服务。最后结合企业实际案例,验证了优选模型的有效性和算法的可行性。 展开更多
关键词 云制造 外协云服务组合 局部搜索策略 nsga--sa算法 用户偏好
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多目标遗传算法NSGA-Ⅱ在某双前桥转向机构优化设计中的应用 被引量:10
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作者 周红妮 冯樱 +1 位作者 胡群 赵慧勇 《机械设计与制造》 北大核心 2015年第11期140-143,共4页
针对东风某双前桥转向重型汽车在使用中存在的轮胎异常磨损问题,利用ADAMS/View软件建立了样车双前桥转向机构参数化仿真模型,基于选择的设计变量与目标函数,在iSIGHT软件中通过集成ADAMS/View模型,对设计变量进行了DOE分析,并利用改进... 针对东风某双前桥转向重型汽车在使用中存在的轮胎异常磨损问题,利用ADAMS/View软件建立了样车双前桥转向机构参数化仿真模型,基于选择的设计变量与目标函数,在iSIGHT软件中通过集成ADAMS/View模型,对设计变量进行了DOE分析,并利用改进的非支配排序遗传算法NSGA-Ⅱ实现了双前桥转向机构的多目标优化,根据Pareto最优解得到仿真结果表明:优化后各车轮转角误差大大减小,可有效解决车轮异常磨损问题。利用多目标遗传算法和计算机仿真集成技术对转向机构进行优化设计,可为今后汽车系统的设计、开发提供新的有效途径。 展开更多
关键词 双前桥转向机构 多目标优化设计 nsga-遗传算法 iSIGHT集成 GENETIC algorithm nsga-
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Multi-objective Function Optimization for Environmental Control of a Greenhouse Based on a RBF and NSGA-Ⅱ
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作者 Zhou Xiu-li Liu Ming-wei +3 位作者 Wang Ling Xu Xiao-chuan Chen Gang Wang De-fu 《Journal of Northeast Agricultural University(English Edition)》 CAS 2021年第1期75-89,共15页
To better meet the needs of crop growth and achieve energy savings and efficiency enhancements,constructing a reliable environmental model to optimize greenhouse decision parameters is an important problem to be solve... To better meet the needs of crop growth and achieve energy savings and efficiency enhancements,constructing a reliable environmental model to optimize greenhouse decision parameters is an important problem to be solved.In this work,a radial-basis function(RBF)neural network was used to mine the potential changes of a greenhouse environment,a temperature error model was established,a multi-objective optimization function of energy consumption was constructed and the corresponding decision parameters were optimized by using a non-dominated sorting genetic algorithm with an elite strategy(NSGA-Ⅱ).The simulation results showed that RBF could clarify the nonlinear relationship among the greenhouse environment variables and decision parameters and the greenhouse temperature.The NSGA-Ⅱ could well search for the Pareto solution for the objective functions.The experimental results showed that after 40 min of combined control of sunshades and sprays,the temperature was reduced from 31℃to 25℃,and the power consumption was 0.5 MJ.Compared with tire three days of July 24,July 25 and July 26,2017,the energy consumption of the controlled production greenhouse was reduced by 37.5%,9.1%and 28.5%,respectively. 展开更多
关键词 greenhouse temperature multi-objective optimization radial-basis function(RBF) non-dominated sorting genetic algorithm with an elite strategy(nsga-)
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基于混合遗传蚁群算法的多目标FJSP问题研究 被引量:5
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作者 赵小惠 卫艳芳 +3 位作者 赵雯 胡胜 王凯峰 倪奕棋 《组合机床与自动化加工技术》 北大核心 2023年第1期188-192,共5页
针对多目标柔性作业车间调度问题求解过程中未综合考虑解集多样性与求解效率的问题,提出了一种混合遗传蚁群算法来求解。首先,通过改进的NSGA-Ⅱ(non-dominated sorting genetic algorithmⅡ)获取问题的较优解,以此来确定蚁群算法的初... 针对多目标柔性作业车间调度问题求解过程中未综合考虑解集多样性与求解效率的问题,提出了一种混合遗传蚁群算法来求解。首先,通过改进的NSGA-Ⅱ(non-dominated sorting genetic algorithmⅡ)获取问题的较优解,以此来确定蚁群算法的初始信息素分布;其次,根据提出的自适应伪随机比例规则和改进的信息素更新规则来优化蚂蚁的遍历过程;最后,通过邻域搜索,扩大蚂蚁的搜索空间,从而提高解集的多样性。通过Kacem和BRdata算例进行实验验证,证明混合遗传蚁群算法具有更高的求解效率和更好解集多样性。 展开更多
关键词 柔性作业车间调度 多目标优化 nsga-(non-dominated sorting genetic algorithm) 蚁群算法
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Dual-resource integrated scheduling method of AGV and machine in intelligent manufacturing job shop 被引量:8
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作者 YUAN Ming-hai LI Ya-dong +1 位作者 PEI Feng-que GU Wen-bin 《Journal of Central South University》 SCIE EI CAS CSCD 2021年第8期2423-2435,共13页
In view of the fact that traditional job shop scheduling only considers a single factor, which affects the effect of resource allocation, the dual-resource integrated scheduling problem between AGV and machine in inte... In view of the fact that traditional job shop scheduling only considers a single factor, which affects the effect of resource allocation, the dual-resource integrated scheduling problem between AGV and machine in intelligent manufacturing job shop environment was studied. The dual-resource integrated scheduling model of AGV and machine was established by comprehensively considering constraints of machines, workpieces and AGVs. The bidirectional single path fixed guidance system based on topological map was determined, and the AGV transportation task model was defined. The improved A* path optimization algorithm was used to determine the optimal path, and the path conflict elimination mechanism was described. The improved NSGA-Ⅱ algorithm was used to determine the machining workpiece sequence, and the competition mechanism was introduced to allocate AGV transportation tasks. The proposed model and method were verified by a workshop production example, the results showed that the dual resource integrated scheduling strategy of AGV and machine is effective. 展开更多
关键词 dual resource integrated scheduling improved A* algorithm improved nsga- algorithm competition mechanism
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Multi-objective capacity allocation optimization method of photovoltaic EV charging station considering V2G 被引量:10
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作者 ZHENG Xue-qin YAO Yi-ping 《Journal of Central South University》 SCIE EI CAS CSCD 2021年第2期481-493,共13页
Large-scale electric vehicles(EVs) connected to the micro grid would cause many problems. In this paper, with the consideration of vehicle to grid(V2 G), two charging and discharging load modes of EVs were constructed... Large-scale electric vehicles(EVs) connected to the micro grid would cause many problems. In this paper, with the consideration of vehicle to grid(V2 G), two charging and discharging load modes of EVs were constructed. One was the disorderly charging and discharging mode based on travel habits, and the other was the orderly charging and discharging mode based on time-of-use(TOU) price;Monte Carlo method was used to verify the case. The scheme of the capacity optimization of photovoltaic charging station under two different charging and discharging modes with V2 G was proposed. The mathematical models of the objective function with the maximization of energy efficiency, the minimization of the investment and the operation cost of the charging system were established. The range of decision variables, constraints of the requirements of the power balance and the strategy of energy exchange were given. NSGA-Ⅱ and NSGA-SA algorithm were used to verify the cases, respectively. In both algorithms, by comparing with the simulation results of the two different modes, it shows that the orderly charging and discharging mode with V2 G is obviously better than the disorderly charging and discharging mode in the aspects of alleviating the pressure of power grid, reducing system investment and improving energy efficiency. 展开更多
关键词 vehicle to grid (V2G) capacity configuration optimization time-to-use (TOU) price multi-objective optimization nsga- algorithm nsga-SA algorithm
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