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Modified bottleneck-based heuristic for large-scale job-shop scheduling problems with a single bottleneck 被引量:21
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作者 Zuo Yan Gu Hanyu Xi Yugeng 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2007年第3期556-565,共10页
A modified bottleneck-based (MB) heuristic for large-scale job-shop scheduling problems with a welldefined bottleneck is suggested, which is simpler but more tailored than the shifting bottleneck (SB) procedure. I... A modified bottleneck-based (MB) heuristic for large-scale job-shop scheduling problems with a welldefined bottleneck is suggested, which is simpler but more tailored than the shifting bottleneck (SB) procedure. In this algorithm, the bottleneck is first scheduled optimally while the non-bottleneck machines are subordinated around the solutions of the bottleneck schedule by some effective dispatching rules. Computational results indicate that the MB heuristic can achieve a better tradeoff between solution quality and computational time compared to SB procedure for medium-size problems. Furthermore, it can obtain a good solution in a short time for large-scale jobshop scheduling problems. 展开更多
关键词 job shop scheduling problem BOTTLENECK shifting bottleneck procedure.
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Project Scheduling问题和Job-Shop问题的神经网络解 被引量:1
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作者 章烔民 吴文娟 陶增乐 《计算机应用与软件》 CSCD 1998年第2期21-28,共8页
Project Scheduling问题和Job-Shop问题是著名的NP难题。本文用神经网络方法去解这两个问题,软件模拟结果是令人满意的。这种方法也为解一大类组合优化问题提供了一个新的途径。
关键词 job-SHOP问题 神经网络 优化问题
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Job shop scheduling problem with alternative machines using genetic algorithms 被引量:10
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作者 I.A.Chaudhry 《Journal of Central South University》 SCIE EI CAS 2012年第5期1322-1333,共12页
The classical job shop scheduling problem(JSP) is the most popular machine scheduling model in practice and is known as NP-hard.The formulation of the JSP is based on the assumption that for each part type or job ther... The classical job shop scheduling problem(JSP) is the most popular machine scheduling model in practice and is known as NP-hard.The formulation of the JSP is based on the assumption that for each part type or job there is only one process plan that prescribes the sequence of operations and the machine on which each operation has to be performed.However,JSP with alternative machines for various operations is an extension of the classical JSP,which allows an operation to be processed by any machine from a given set of machines.Since this problem requires an additional decision of machine allocation during scheduling,it is much more complex than JSP.We present a domain independent genetic algorithm(GA) approach for the job shop scheduling problem with alternative machines.The GA is implemented in a spreadsheet environment.The performance of the proposed GA is analyzed by comparing with various problem instances taken from the literatures.The result shows that the proposed GA is competitive with the existing approaches.A simplified approach that would be beneficial to both practitioners and researchers is presented for solving scheduling problems with alternative machines. 展开更多
关键词 alternative machine genetic algorithm (GA) job shop scheduling SPREADSHEET
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Solving flexible job shop scheduling problem by a multi-swarm collaborative genetic algorithm 被引量:12
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作者 WANG Cuiyu LI Yang LI Xinyu 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2021年第2期261-271,共11页
The flexible job shop scheduling problem(FJSP),which is NP-hard,widely exists in many manufacturing industries.It is very hard to be solved.A multi-swarm collaborative genetic algorithm(MSCGA)based on the collaborativ... The flexible job shop scheduling problem(FJSP),which is NP-hard,widely exists in many manufacturing industries.It is very hard to be solved.A multi-swarm collaborative genetic algorithm(MSCGA)based on the collaborative optimization algorithm is proposed for the FJSP.Multi-population structure is used to independently evolve two sub-problems of the FJSP in the MSCGA.Good operators are adopted and designed to ensure this algorithm to achieve a good performance.Some famous FJSP benchmarks are chosen to evaluate the effectiveness of the MSCGA.The adaptability and superiority of the proposed method are demonstrated by comparing with other reported algorithms. 展开更多
关键词 flexible job shop scheduling problem(FJSP) collaborative genetic algorithm co-evolutionary algorithm
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An improved multi-objective optimization algorithm for solving flexible job shop scheduling problem with variable batches 被引量:3
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作者 WU Xiuli PENG Junjian +2 位作者 XIE Zirun ZHAO Ning WU Shaomin 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2021年第2期272-285,共14页
In order to solve the flexible job shop scheduling problem with variable batches,we propose an improved multiobjective optimization algorithm,which combines the idea of inverse scheduling.First,a flexible job shop pro... In order to solve the flexible job shop scheduling problem with variable batches,we propose an improved multiobjective optimization algorithm,which combines the idea of inverse scheduling.First,a flexible job shop problem with the variable batches scheduling model is formulated.Second,we propose a batch optimization algorithm with inverse scheduling in which the batch size is adjusted by the dynamic feedback batch adjusting method.Moreover,in order to increase the diversity of the population,two methods are developed.One is the threshold to control the neighborhood updating,and the other is the dynamic clustering algorithm to update the population.Finally,a group of experiments are carried out.The results show that the improved multi-objective optimization algorithm can ensure the diversity of Pareto solutions effectively,and has effective performance in solving the flexible job shop scheduling problem with variable batches. 展开更多
关键词 flexible job shop variable batch inverse scheduling multi-objective evolutionary algorithm based on decomposition a batch optimization algorithm with inverse scheduling
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Approximation algorithm for multiprocessor parallel job scheduling 被引量:1
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作者 陈松乔 黄金贵 陈建二 《Journal of Central South University of Technology》 2002年第4期267-272,共6页
P k |fix| C max problem is a new scheduling problem based on the multiprocessor parallel job, and it is proved to be NP hard problem when k ≥3. This paper focuses on the case of k =3. Some new observations and new te... P k |fix| C max problem is a new scheduling problem based on the multiprocessor parallel job, and it is proved to be NP hard problem when k ≥3. This paper focuses on the case of k =3. Some new observations and new techniques for P 3 |fix| C max problem are offered. The concept of semi normal schedulings is introduced, and a very simple linear time algorithm Semi normal Algorithm for constructing semi normal schedulings is developed. With the method of the classical Graham List Scheduling, a thorough analysis of the optimal scheduling on a special instance is provided, which shows that the algorithm is an approximation algorithm of ratio of 9/8 for any instance of P 3|fix| C max problem, and improves the previous best ratio of 7/6 by M.X.Goemans. 展开更多
关键词 MULTIPROCESSOR PARALLEL job scheduling APPROXIMATION algorithm NP-HARD problem
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A bi-objective model for job-shop scheduling problem to minimize both energy consumption and makespan 被引量:4
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作者 何彦 刘飞 +1 位作者 曹华军 李聪波 《Journal of Central South University》 SCIE EI CAS 2005年第S2期167-171,共5页
The issue of reducing energy consumption for the job-shop scheduling problem in machining systems is addressed, whose dual objectives are to minimize both the energy consumption and the makespan. First, the bi- object... The issue of reducing energy consumption for the job-shop scheduling problem in machining systems is addressed, whose dual objectives are to minimize both the energy consumption and the makespan. First, the bi- objective model for the job-shop scheduling problem is proposed. The objective function value of the model represents synthesized optimization of energy consumption and makespan. Then, a heuristic algorithm is developed to locate the optimal or near optimal solutions of the model based on the Tabu search mechanism. Finally, the experimental case is presented to demonstrate the effectiveness of the proposed model and the algorithm. 展开更多
关键词 green manufacturing job-SHOP scheduling tabu SEARCH ENERGY-SAVING
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Job shop scheduling problem based on DNA computing
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作者 Yin Zhixiang Cui Jianzhong Yang Yan Ma Ying 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2006年第3期654-659,共6页
To solve job shop scheduling problem, a new approach-DNA computing is used in solving job shop scheduling problem. The approach using DNA computing to solve job shop scheduling is divided into three stands. Finally, o... To solve job shop scheduling problem, a new approach-DNA computing is used in solving job shop scheduling problem. The approach using DNA computing to solve job shop scheduling is divided into three stands. Finally, optimum solutions are obtained by sequencing A small job shop scheduling problem is solved in DNA computing, and the "operations" of the computation were performed with standard protocols, as ligation, synthesis, electrophoresis etc. This work represents further evidence for the ability of DNA computing to solve NP-complete search problems. 展开更多
关键词 DNA computing job shop scheduling problem WEIGHTED tournament.
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A Heuristic for the Job Scheduling Problem with a Common Due Window on Parallel and Non-Identical Machines
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作者 Huang Decai College of information Engineering, Zhejiang University of Technology,Hangzhou 310014, P. R. China 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2001年第2期6-11,共6页
In this paper, we give a mathematical model for earliness-tardiness job scheduling problem with a common due window on parallel and non-identical machines. Because the job scheduling problem discussed in the paper con... In this paper, we give a mathematical model for earliness-tardiness job scheduling problem with a common due window on parallel and non-identical machines. Because the job scheduling problem discussed in the paper contains a problem of minimizing make-span, which is NP-complete on parallel and uniform machines, a heuristic algorithm is presented to find an approximate solution for the scheduling problem after proving an important theorem. Two numerical examples illustrate that the heuristic algorithm is very useful and effective in obtaining the near-optimal solution. 展开更多
关键词 Common due window job scheduling Earliness-tardiness JIT.
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Modeling and Analysis of Single Machine Scheduling Based on Noncooperative Game Theory 被引量:3
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作者 WANGChang-Jun XIYu-Geng 《自动化学报》 EI CSCD 北大核心 2005年第4期516-522,共7页
Considering the independent optimization requirement for each demander of modernmanufacture, we explore the application of noncooperative game in production scheduling research,and model scheduling problem as competit... Considering the independent optimization requirement for each demander of modernmanufacture, we explore the application of noncooperative game in production scheduling research,and model scheduling problem as competition of machine resources among a group of selfish jobs.Each job has its own performance objective. For the single machine, multi-jobs and non-preemptivescheduling problem, a noncooperative game model is established. Based on the model, many prob-lems about Nash equilibrium solution, such as the existence, quantity, properties of solution space,performance of solution and algorithm are discussed. The results are tested by numerical example. 展开更多
关键词 单机时序 NASH平衡 工作计划 工作目标 自动化技术
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Hybrid heuristic algorithm for multi-objective scheduling problem 被引量:3
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作者 PENG Jian'gang LIU Mingzhou +1 位作者 ZHANG Xi LING Lin 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2019年第2期327-342,共16页
This research provides academic and practical contributions. From a theoretical standpoint, a hybrid harmony search(HS)algorithm, namely the oppositional global-based HS(OGHS), is proposed for solving the multi-object... This research provides academic and practical contributions. From a theoretical standpoint, a hybrid harmony search(HS)algorithm, namely the oppositional global-based HS(OGHS), is proposed for solving the multi-objective flexible job-shop scheduling problems(MOFJSPs) to minimize makespan, total machine workload and critical machine workload. An initialization program embedded in opposition-based learning(OBL) is developed for enabling the individuals to scatter in a well-distributed manner in the initial harmony memory(HM). In addition, the recursive halving technique based on opposite number is employed for shrinking the neighbourhood space in the searching phase of the OGHS. From a practice-related standpoint, a type of dual vector code technique is introduced for allowing the OGHS algorithm to adapt the discrete nature of the MOFJSP. Two practical techniques, namely Pareto optimality and technique for order preference by similarity to an ideal solution(TOPSIS), are implemented for solving the MOFJSP.Furthermore, the algorithm performance is tested by using different strategies, including OBL and recursive halving, and the OGHS is compared with existing algorithms in the latest studies.Experimental results on representative examples validate the performance of the proposed algorithm for solving the MOFJSP. 展开更多
关键词 flexible job-SHOP scheduling HARMONY SEARCH (HS) algorithm PARETO OPTIMALITY opposition-based learning
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深度强化学习求解动态柔性作业车间调度问题 被引量:1
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作者 杨丹 舒先涛 +3 位作者 余震 鲁光涛 纪松霖 王家兵 《现代制造工程》 北大核心 2025年第2期10-16,共7页
随着智慧车间等智能制造技术的不断发展,人工智能算法在解决车间调度问题上的研究备受关注,其中车间运行过程中的动态事件是影响调度效果的一个重要扰动因素,为此提出一种采用深度强化学习方法来解决含有工件随机抵达的动态柔性作业车... 随着智慧车间等智能制造技术的不断发展,人工智能算法在解决车间调度问题上的研究备受关注,其中车间运行过程中的动态事件是影响调度效果的一个重要扰动因素,为此提出一种采用深度强化学习方法来解决含有工件随机抵达的动态柔性作业车间调度问题。首先以最小化总延迟为目标建立动态柔性作业车间的数学模型,然后提取8个车间状态特征,建立6个复合型调度规则,采用ε-greedy动作选择策略并对奖励函数进行设计,最后利用先进的D3QN算法进行求解并在不同规模车间算例上进行了有效性验证。结果表明,提出的D3QN算法能非常有效地解决含有工件随机抵达的动态柔性作业车间调度问题,在所有车间算例中的求优胜率为58.3%,相较于传统的DQN和DDQN算法车间延迟分别降低了11.0%和15.4%,进一步提升车间的生产制造效率。 展开更多
关键词 深度强化学习 D3QN算法 工件随机抵达 柔性作业车间调度 动态调度
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基于图神经网络和强化学习的柔性作业车间调度算法 被引量:2
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作者 王亮 顾益铭 刘世亮 《实验室研究与探索》 北大核心 2025年第2期101-109,共9页
针对不同规模的柔性作业车间调度问题,提出一种基于图神经网络的深度强化学习算法(GRL)。该算法采用3个异构析取子图来表征车间状态,并利用图神经网络提取车间特征,构建相应的马尔可夫决策过程,使用模仿学习与强化学习相结合的联合训练... 针对不同规模的柔性作业车间调度问题,提出一种基于图神经网络的深度强化学习算法(GRL)。该算法采用3个异构析取子图来表征车间状态,并利用图神经网络提取车间特征,构建相应的马尔可夫决策过程,使用模仿学习与强化学习相结合的联合训练策略来更新神经网络参数。实验结果表明,所提GRL算法在不同规模订单、工序复杂程度和机器选择柔性下表现出较低的最长完工时间和较小的案例参数敏感性。将小规则案例下训练的网络泛化至大规模案例,体现相对优先调度规则较好且稳定的求解质量。研究成果为项目式教学提供典型的人工智能应用案例。 展开更多
关键词 强化学习 图神经网络 模仿学习 柔性作业车间调度
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考虑机器数量增加的多处理机工件调度优化 被引量:1
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作者 孙涛 王军强 黄永兴 《计算机集成制造系统》 北大核心 2025年第3期924-938,共15页
多处理机工件是在同一时刻由多台处理机并行加工的工件。面向以最小化最大完工时间为目标的多处理机工件调度,分析了机器数量增加对最大完工时间的影响,证明了最优调度方案和所提近似调度方案的最好情形影响比,揭示了最大完工时间随着... 多处理机工件是在同一时刻由多台处理机并行加工的工件。面向以最小化最大完工时间为目标的多处理机工件调度,分析了机器数量增加对最大完工时间的影响,证明了最优调度方案和所提近似调度方案的最好情形影响比,揭示了最大完工时间随着机器数量增加而减少并趋于稳定的规律。分析了机器数量增加的影响,一方面改善了调度目标,另一方面增加了机器投入成本。权衡最大完工时间减少和机器成本增加两方面影响,以最小化最大完工时间与机器成本加权和为目标决策机器数量。基于降序首次适应算法设计了近似算法,给出了调度优化方案,并证明了所提算法的最差性能比不超过2。通过仿真实验,验证了所提算法的最好情形影响比及算法的有效性。 展开更多
关键词 多处理机工件调度 资源扩充 最好情形影响比 近似算法 最差性能比
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基于DRL的大规模定制装配车间调度研究
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作者 屈新怀 张慧慧 +1 位作者 丁必荣 孟冠军 《合肥工业大学学报(自然科学版)》 北大核心 2025年第7期878-883,共6页
针对大规模定制装配车间中订单的随机性和偶然性问题,文章提出一种基于深度强化学习(deep reinforcement learning,DRL)的大规模定制装配车间作业调度优化方法。建立以最小化产品组件更换次数和最小化订单提前/拖期惩罚为目标的大规模... 针对大规模定制装配车间中订单的随机性和偶然性问题,文章提出一种基于深度强化学习(deep reinforcement learning,DRL)的大规模定制装配车间作业调度优化方法。建立以最小化产品组件更换次数和最小化订单提前/拖期惩罚为目标的大规模定制装配车间作业调度优化模型,基于调度模型建立马尔科夫决策过程,合理定义状态、动作和奖励函数;将调度模型优化问题与DRL方法相结合,并采用改进的D3QN算法进行模型求解;最后进行仿真实验验证。结果表明,文章所提方法能有效减少产品组件更换次数和降低订单提前/拖期惩罚。 展开更多
关键词 大规模定制 装配车间 深度强化学习(DRL) 车间作业调度 调度优化模型
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带有充电约束的多AGV柔性作业车间调度 被引量:1
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作者 李晓辉 资湖海 +3 位作者 徐坷鑫 牛樱清 赵毅 董媛 《计算机工程》 北大核心 2025年第4期314-326,共13页
在制造单元不再唯一且加工时间不确定的柔性作业车间调度中,多自动导向小车(AGV)发挥着重要作用。然而当AGV执行任务时间过长、消耗电量较多时,充电事件成为必须考虑的因素。该研究旨在解决考虑电池约束条件下的多AGV的柔性车间作业调... 在制造单元不再唯一且加工时间不确定的柔性作业车间调度中,多自动导向小车(AGV)发挥着重要作用。然而当AGV执行任务时间过长、消耗电量较多时,充电事件成为必须考虑的因素。该研究旨在解决考虑电池约束条件下的多AGV的柔性车间作业调度问题。综合考虑制造单元加工时间、AGV小车搬运时间以及AGV小车充电情况等约束条件,以优化最大完工时间为目标。针对此问题建立数学模型,将文化基因算法和自适应变邻域搜索算法相结合提出一种混合文化基因算法。该算法采用文化基因算法作为框架,并引入基于析取图的关键路径方法,以解决制造单元和AGV小车滞空率高的问题。同时,为了提高算法的寻优能力,避免陷入局部最优解,利用自适应变邻域搜索对当前迭代中的最优解进行改进。针对模型特点,设计多种打破重组的邻域结构,以实现算法求解最优值的目标。仿真实验结果表明,该算法具有寻找最优解的能力且整体性能优于所对比的算法,验证了该算法的有效性。 展开更多
关键词 柔性作业车间调度 自动导向小车 充电 基因算法 自适应变邻域搜索算法
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考虑动态预维护与绿色调度的协同优化问题
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作者 江雨燕 马宁 +2 位作者 李艳 甘如美江 王付宇 《系统仿真学报》 北大核心 2025年第2期362-378,共17页
针对传统柔性作业车间调度问题,将机器动态预维护与绿色调度进行联合优化,以最小化最大完工时间、总碳排放量、总成本为优化目标建立集成优化模型。提出了一种改进的NSGA-I算法用于求解该模型,采用基于工序、机器和预维护的三层编码方式... 针对传统柔性作业车间调度问题,将机器动态预维护与绿色调度进行联合优化,以最小化最大完工时间、总碳排放量、总成本为优化目标建立集成优化模型。提出了一种改进的NSGA-I算法用于求解该模型,采用基于工序、机器和预维护的三层编码方式,设计了考虑工序分配、机器选择以及机器预维护策略的同步解码方案;改进了精英保留策略,设计了随着代数变化的自适应交又变异函数以及基于邻域搜索的变异算子。实验验证了改进算法在求解不同规模调度问题的有效性,所提的动态预维护策略较其他维护策略能更有效地求解预维护与柔性作业车间绿色调度协同优化问题。 展开更多
关键词 预维护 绿色调度 INSGA-Ⅱ 协同优化 柔性作业车间
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不确定动态柔性作业车间调度方法的鲁棒性评估
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作者 马建 高伟男 《控制工程》 北大核心 2025年第10期1846-1856,共11页
传统的静态作业车间调度方法在应对实际制造环境中的动态变化时,常表现出应变能力不足和适应性差等缺陷。现有的大多数动态作业车间调度方法在具有单一不确定因素的环境中能够发挥作用,在多种不确定因素并存的复杂环境中往往难以取得预... 传统的静态作业车间调度方法在应对实际制造环境中的动态变化时,常表现出应变能力不足和适应性差等缺陷。现有的大多数动态作业车间调度方法在具有单一不确定因素的环境中能够发挥作用,在多种不确定因素并存的复杂环境中往往难以取得预期效果。为了深入探讨调度方法在不确定场景下的鲁棒性,首先引入加工时间波动、新工件插入和工件优先级调整3种不确定因素,并设计存在两种不确定因素的调度场景;然后,在不确定场景下,将遗传算法、模拟退火算法、先进先出规则、最短处理时间规则和最长处理时间规则应用在多个调度问题实例中。实验结果表明,模拟退火算法在不确定场景下表现出显著的鲁棒性,3种基本调度规则表现出较低的调度效率和鲁棒性。 展开更多
关键词 动态车间调度 遗传算法 模拟退火算法 调度规则 鲁棒性
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基于改进GEP的绿色柔性作业车间调度研究 被引量:1
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作者 王婷 于颖 赵曜 《组合机床与自动化加工技术》 北大核心 2025年第3期219-225,231,共8页
降低制造过程能源消耗和碳排放是近年来备受制造业关注的问题,车间生产是制造过程产生能耗的主要因素之一,合理的车间调度方法可以有效降低车间生产能耗和碳排放。针对绿色柔性作业车间调度问题(green flexible job shop scheduling pro... 降低制造过程能源消耗和碳排放是近年来备受制造业关注的问题,车间生产是制造过程产生能耗的主要因素之一,合理的车间调度方法可以有效降低车间生产能耗和碳排放。针对绿色柔性作业车间调度问题(green flexible job shop scheduling problem,GFJSP),提出了一种改进的多目标基因表达式编程(multi-objective gene expression programming,MOGEP)算法,并建立起以最大完工时间和总能耗为优化目标的数学模型。针对GFJSP的特点和MOGEP算法的求解方式,设计了用于车间调度问题的个体评价机制;针对算法特殊的基因构造形式,设计了基于K-表达式的变异操作和重组操作;提出了基于个体的自适应遗传算子,能够动态地调整遗传操作的概率;在MOGEP框架中融入了具有5层邻域结构的禁忌搜索策略,避免算法过早陷入局部最优。通过仿真对比实验证明,改进MOGEP算法在兼顾解的分布性的同时增强了全局收敛能力,具有更高的探索效率;且其生成的调度规则能够有效优化完工时间和生产能耗,具有实际应用价值。 展开更多
关键词 绿色柔性作业车间调度 多目标基因表达式编程 个体评价机制 自适应遗传算子 禁忌搜索策略
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考虑峰值功率受限约束的柔性作业车间调度研究
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作者 李益兵 曹岩 +3 位作者 郭钧 王磊 李西兴 孙利波 《中国机械工程》 北大核心 2025年第2期280-293,共14页
针对车间峰值功率受限约束下的柔性作业车间调度面临的作业周期增加、机器负荷增大的问题,建立以最小化最大完工时间和最小化机器最大负载为优化目标、考虑车间峰值功率约束的柔性作业车间调度问题(PPCFJSP)模型。为更好地调度决策,首... 针对车间峰值功率受限约束下的柔性作业车间调度面临的作业周期增加、机器负荷增大的问题,建立以最小化最大完工时间和最小化机器最大负载为优化目标、考虑车间峰值功率约束的柔性作业车间调度问题(PPCFJSP)模型。为更好地调度决策,首先将该问题转化为马尔可夫决策过程,基于此设计了一个结合离线训练与在线调度的用于求解PPCFJSP的调度框架。然后设计了一种基于优先级经验重放的双重决斗深度Q网络(D3QNPER)算法,并设计了一种引入噪声的ε-贪婪递减策略,提高了算法收敛速度,进一步提高了求解能力和求解结果的稳定性。最后开展实验与算法对比研究,验证了模型和算法的有效性。 展开更多
关键词 柔性作业车间调度 马尔可夫决策过程 深度强化学习 峰值功率受限
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