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Two-phase heuristic for vehicle routing problem with drones in multi-trip and multi-drop mode
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作者 MA Huawei HU Xiaoxuan ZHU Waiming 《Journal of Systems Engineering and Electronics》 2025年第4期1024-1036,共13页
As commercial drone delivery becomes increasingly popular,the extension of the vehicle routing problem with drones(VRPD)is emerging as an optimization problem of inter-ests.This paper studies a variant of VRPD in mult... As commercial drone delivery becomes increasingly popular,the extension of the vehicle routing problem with drones(VRPD)is emerging as an optimization problem of inter-ests.This paper studies a variant of VRPD in multi-trip and multi-drop(VRP-mmD).The problem aims at making schedules for the trucks and drones such that the total travel time is minimized.This paper formulate the problem with a mixed integer program-ming model and propose a two-phase algorithm,i.e.,a parallel route construction heuristic(PRCH)for the first phase and an adaptive neighbor searching heuristic(ANSH)for the second phase.The PRCH generates an initial solution by con-currently assigning as many nodes as possible to the truck–drone pair to progressively reduce the waiting time at the rendezvous node in the first phase.Then the ANSH improves the initial solution by adaptively exploring the neighborhoods in the second phase.Numerical tests on some benchmark data are conducted to verify the performance of the algorithm.The results show that the proposed algorithm can found better solu-tions than some state-of-the-art methods for all instances.More-over,an extensive analysis highlights the stability of the pro-posed algorithm. 展开更多
关键词 vehicle routing problem with drones(VRPD) mixed integer program parallel route construction heuristic(PRCH) adaptive neighbor searching heuristic(ANSH).
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Multi-type ant system algorithm for the time dependent vehicle routing problem with time windows 被引量:16
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作者 DENG Ye ZHU Wanhong +1 位作者 LI Hongwei ZHENG Yonghui 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2018年第3期625-638,共14页
The time dependent vehicle routing problem with time windows(TDVRPTW) is considered. A multi-type ant system(MTAS) algorithm hybridized with the ant colony system(ACS)and the max-min ant system(MMAS) algorithm... The time dependent vehicle routing problem with time windows(TDVRPTW) is considered. A multi-type ant system(MTAS) algorithm hybridized with the ant colony system(ACS)and the max-min ant system(MMAS) algorithms is proposed. This combination absorbs the merits of the two algorithms in solutions construction and optimization separately. In order to improve the efficiency of the insertion procedure, a nearest neighbor selection(NNS) mechanism, an insertion local search procedure and a local optimization procedure are specified in detail. And in order to find a balance between good scouting performance and fast convergence rate, an adaptive pheromone updating strategy is proposed in the MTAS. Computational results confirm the MTAS algorithm's good performance with all these strategies on classic vehicle routing problem with time windows(VRPTW) benchmark instances and the TDVRPTW instances, and some better results especially for the number of vehicles and travel times of the best solutions are obtained in comparison with the previous research. 展开更多
关键词 multi-type ant system(MTAS) time dependent vehicle routing problem with time windows(VRPTW) nearest neighbor selection(NNS)
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Location and allocation problem for spare parts depots on integrated logistics support 被引量:4
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作者 WEN Meilin LU Bohan +1 位作者 LI Shuyu KANG Rui 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2019年第6期1252-1259,共8页
In equipment integrated logistics support(ILS), the supply capability of spare parts is a significant factor. There are lots of depots in the traditional support system, which makes too many redundant spare parts and ... In equipment integrated logistics support(ILS), the supply capability of spare parts is a significant factor. There are lots of depots in the traditional support system, which makes too many redundant spare parts and causes high cost of support. Meanwhile,the inconsistency among depots makes it difficult to manage spare parts. With the development of information technology and transportation, the supply network has become more efficient. In order to further improve the efficiency of supply-support work and the availability of the equipment system, building a system of one centralized depot with multiple depots becomes an appropriate way.In this case, location selection of the depots including centralized depots and multiple depots becomes a top priority in the support system. This paper will focus on the location selection problem of centralized depots considering ILS factors. Unlike the common location selection problem, depots in ILS require a higher service level. Therefore, it becomes desperately necessary to take the high requirement of the mission into account while determining location of depots. Based on this, we raise an optimal depot location model. First, the expected transportation cost is calculated.Next, factors in ILS such as response time, availability and fill rate are analyzed for evaluating positions of open depots. Then, an optimization model of depot location is developed with the minimum expected cost of transportation as objective and ILS factors as constraints. Finally, a numerical case is studied to prove the validity of the model by using the genetic algorithm. Results show that depot location obtained by this model can guarantee the effectiveness and capability of ILS well. 展开更多
关键词 location problem spare parts depot integrated logis tics support genetic algorithm.
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Solving material distribution routing problem in mixed manufacturing systems with a hybrid multi-objective evolutionary algorithm 被引量:7
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作者 高贵兵 张国军 +2 位作者 黄刚 朱海平 顾佩华 《Journal of Central South University》 SCIE EI CAS 2012年第2期433-442,共10页
The material distribution routing problem in the manufacturing system is a complex combinatorial optimization problem and its main task is to deliver materials to the working stations with low cost and high efficiency... The material distribution routing problem in the manufacturing system is a complex combinatorial optimization problem and its main task is to deliver materials to the working stations with low cost and high efficiency. A multi-objective model was presented for the material distribution routing problem in mixed manufacturing systems, and it was solved by a hybrid multi-objective evolutionary algorithm (HMOEA). The characteristics of the HMOEA are as follows: 1) A route pool is employed to preserve the best routes for the population initiation; 2) A specialized best?worst route crossover (BWRC) mode is designed to perform the crossover operators for selecting the best route from Chromosomes 1 to exchange with the worst one in Chromosomes 2, so that the better genes are inherited to the offspring; 3) A route swap mode is used to perform the mutation for improving the convergence speed and preserving the better gene; 4) Local heuristics search methods are applied in this algorithm. Computational study of a practical case shows that the proposed algorithm can decrease the total travel distance by 51.66%, enhance the average vehicle load rate by 37.85%, cut down 15 routes and reduce a deliver vehicle. The convergence speed of HMOEA is faster than that of famous NSGA-II. 展开更多
关键词 material distribution routing problem multi-objective optimization evolutionary algorithm local search
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An improved estimation of distribution algorithm for multi-compartment electric vehicle routing problem 被引量:6
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作者 SHEN Yindong PENG Liwen LI Jingpeng 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2021年第2期365-379,共15页
The multi-compartment electric vehicle routing problem(EVRP)with soft time window and multiple charging types(MCEVRP-STW&MCT)is studied,in which electric multi-compartment vehicles that are environmentally friendl... The multi-compartment electric vehicle routing problem(EVRP)with soft time window and multiple charging types(MCEVRP-STW&MCT)is studied,in which electric multi-compartment vehicles that are environmentally friendly but need to be recharged in course of transport process,are employed.A mathematical model for this optimization problem is established with the objective of minimizing the function composed of vehicle cost,distribution cost,time window penalty cost and charging service cost.To solve the problem,an estimation of the distribution algorithm based on Lévy flight(EDA-LF)is proposed to perform a local search at each iteration to prevent the algorithm from falling into local optimum.Experimental results demonstrate that the EDA-LF algorithm can find better solutions and has stronger robustness than the basic EDA algorithm.In addition,when comparing with existing algorithms,the result shows that the EDA-LF can often get better solutions in a relatively short time when solving medium and large-scale instances.Further experiments show that using electric multi-compartment vehicles to deliver incompatible products can produce better results than using traditional fuel vehicles. 展开更多
关键词 multi-compartment vehicle routing problem electric vehicle routing problem(EVRP) soft time window multiple charging type estimation of distribution algorithm(EDA) Lévy flight
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Approximation Algorithms for the Priority Facility Location Problem with Penalties 被引量:2
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作者 WANG Fengmin XU Dachuan WU Chenchen 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2015年第5期1102-1114,共13页
develop a mentation This paper considers the priority facility primal-dual 3-approximation algorithm for procedure, the authors further improve the location problem with penalties: The authors this problem. Combining... develop a mentation This paper considers the priority facility primal-dual 3-approximation algorithm for procedure, the authors further improve the location problem with penalties: The authors this problem. Combining with the greedy aug- previous ratio 3 to 1.8526. 展开更多
关键词 Approximation algorithm facility location problem greedy augmentation PRIMAL-DUAL
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A Clustering-based Location Allocation Method for Delivery Sites under Epidemic Situations
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作者 Zhou Yaqiong Chen Junqi +2 位作者 Li Weishi Qiu Sihang Ju Rusheng 《系统仿真学报》 CAS CSCD 北大核心 2024年第12期2782-2796,共15页
To address the poor performance of commonly used intelligent optimization algorithms in solving location problems—specifically regarding effectiveness,efficiency,and stability—this study proposes a novel location al... To address the poor performance of commonly used intelligent optimization algorithms in solving location problems—specifically regarding effectiveness,efficiency,and stability—this study proposes a novel location allocation method for the delivery sites to deliver daily necessities during epidemic quarantines.After establishing the optimization objectives and constraints,we developed a relevant mathematical model based on the collected data and utilized traditional intelligent optimization algorithms to obtain Pareto optimal solutions.Building on the characteristics of these Pareto front solutions,we introduced an improved clustering algorithm and conducted simulation experiments using data from Changchun City.The results demonstrate that the proposed algorithm outperforms traditional intelligent optimization algorithms in terms of effectiveness,efficiency,and stability,achieving reductions of approximately 12%and 8%in time and labor costs,respectively,compared to the baseline algorithm. 展开更多
关键词 location problem clustering algorithm intelligent optimization algorithm Pareto front
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Design of Vehicle Routing by Integrating Optimization and Simulated Annealing Approach
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作者 Chwen-Tzeng Su Chikong Hwang 《厦门大学学报(自然科学版)》 CAS CSCD 北大核心 2002年第S1期-,共2页
The vehicle routing problem (VRP) can be described as the problem of designing the optimal delivery or collection routes from one or several depots to a number of geographically scattered customers, subject to load co... The vehicle routing problem (VRP) can be described as the problem of designing the optimal delivery or collection routes from one or several depots to a number of geographically scattered customers, subject to load constraints. The routing decision involves determining which of the demand s will be satisfied by each vehicle and what route each vehicle will follow in s erving its assigned demand in order to minimize total delivery cost. In this pap er, a methodology for the design of VRP by integrating optimization and simulate d annealing (SA) approach is presented hierarchically. To express the problem of vehicle routing, a new mathematical formulation is first conducted. The objecti ve function involves both the delivery cost and the vehicle acquisition cost wit h load constraints. A heuristic is then proposed to solve this problem by using SA procedure in conjunction with any solution procedure of travelling salesman p roblem (TSP). The initial configuration is arranged as one vehicle route ser ving one customer. The SA searching procedure is then developed to combine custo mer to any one of the vehicle routes existed in the system if the capacity and c ost are attractive. An important concept of this proposed heuristic is that it attempts to minimize total number of vehicle required in the system on the b asis of the fixed cost and the variable cost view points. In addition, this appr oach can be easily adapted to accommodate many additional problem complexities. 展开更多
关键词 Vehicle routing problem Travelling Salesman Prob lem Simulated Annealing procedure OPTIMIZATION
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需求不确定下的两阶段应急物流选址-路径研究 被引量:3
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作者 王庆荣 王雪娜 +1 位作者 朱昌锋 李裕杰 《灾害学》 北大核心 2025年第1期160-166,共7页
针对灾后应急救援在需求不确定和资源受限方面的问题,以多级应急物流网络为背景,构建了一个需求不确定下的两阶段应急选址-路径规划模型。该模型以总成本最小和救援车辆运输总距离最短为目标,采用三角模糊数刻画受灾点的不确定需求,并... 针对灾后应急救援在需求不确定和资源受限方面的问题,以多级应急物流网络为背景,构建了一个需求不确定下的两阶段应急选址-路径规划模型。该模型以总成本最小和救援车辆运输总距离最短为目标,采用三角模糊数刻画受灾点的不确定需求,并采用基于可信性的模糊机会约束规划方法,以消除约束条件中的不确定参数。模型第一阶段调用Gurobi求解器,求解得到应急配送中心选址结果和对受灾点的分配方案;第二阶段将选址及分配结果作为输入进行路径规划,并提出一种改进的自适应遗传算法(IAGA)对算例进行求解。然后采用自适应遗传算法(AGA)与之对比,并进行灵敏度分析。结果表明:IAGA在目标值、收敛速度和运行时间等方面均优于AGA,证明了IAGA具有一定的可行性和有效性,且可以为决策者提供较优的应急选址-路径规划方案,从而提升灾后救援的效率。 展开更多
关键词 应急物流 选址-路径问题 Gurobi 模糊需求 改进的自适应遗传算法
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卡车-无人机协同的洪灾应急选址-路径鲁棒优化问题 被引量:1
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作者 龚英 涂熳熳 周愉峰 《计算机工程与应用》 北大核心 2025年第14期307-321,共15页
为提高洪灾应急物资配送效率,提出卡车-无人机动态协同配送应急物资。考虑洪灾环境特征,以应急物资配送的总时间最短为目标,构建卡车-无人机动态协同的应急物资配送选址-路径鲁棒优化模型。使用改进的禁忌搜索算法求解模型。在改进算法... 为提高洪灾应急物资配送效率,提出卡车-无人机动态协同配送应急物资。考虑洪灾环境特征,以应急物资配送的总时间最短为目标,构建卡车-无人机动态协同的应急物资配送选址-路径鲁棒优化模型。使用改进的禁忌搜索算法求解模型。在改进算法中,设计了多种交叉、逆转的邻域算子来扩大邻域搜索范围,并加入修复算子以保证路径可行且实现选址决策。实验结果表明:提出的模型能有效解决洪灾应急物资配送选址-路径问题;鲁棒优化模型可有效保证卡车行驶时间波动下路径的可行性;与遗传算法、模拟退火算法以及粒子群算法相比,改进禁忌搜索算法具有更优的性能。 展开更多
关键词 洪灾应急物流 选址-路径问题 卡车-无人机动态协同 鲁棒优化 禁忌搜索算法
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改进樽海鞘算法求解低碳冷链多式联运路径优化问题 被引量:1
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作者 齐琳 马良 张惠珍 《包装工程》 北大核心 2025年第9期196-202,共7页
目的设计一种改进的樽海鞘算法求解所构建的模型,并验证该模型和算法的有效性和可行性。方法建立最小化总运输成本、碳排放成本和最小化风险多目标模型,设计融合混沌映射、信息共享机制、多种群策略的樽海鞘算法求解该模型,并用其求解... 目的设计一种改进的樽海鞘算法求解所构建的模型,并验证该模型和算法的有效性和可行性。方法建立最小化总运输成本、碳排放成本和最小化风险多目标模型,设计融合混沌映射、信息共享机制、多种群策略的樽海鞘算法求解该模型,并用其求解临沂—沈阳多式联运路径问题。结果通过随机算例、实际案例验证以及与基本樽海鞘算法对比可知,改进的樽海鞘算法展现出优越的优化性能。结论采用改进的樽海鞘算法求解低碳冷链多式联运路径优化模型,能够提供高效的解决方案,为决策者在处理多目标决策问题时提供一个有效的解决策略,有助于在实际应用中提供更优的运输路径规划方案。 展开更多
关键词 多式联运 低碳 樽海鞘算法 路径优化问题
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多目标双元闭环供应链回收连锁店选址模型及优化算法 被引量:1
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作者 魏欣 张宇恒 +1 位作者 张惠珍 马良 《计算机应用研究》 北大核心 2025年第3期818-824,共7页
为推进各类资源节约集约利用,提高废弃物回收和利用效率,考虑了竞争存在下的利润最优化问题,从逆向供应链视角,基于博弈理论构建了包含制造商、回收商、回收竞争商,以及消费者在内的混合竞争回收渠道双元闭环供应链系统;并同时以建设服... 为推进各类资源节约集约利用,提高废弃物回收和利用效率,考虑了竞争存在下的利润最优化问题,从逆向供应链视角,基于博弈理论构建了包含制造商、回收商、回收竞争商,以及消费者在内的混合竞争回收渠道双元闭环供应链系统;并同时以建设服务成本最小化、客户满意度最大化、回收利润最大化为目标,建立多目标双元闭环供应链回收连锁店选址模型。借鉴蘑菇繁殖生长机制的原理,以繁殖过程中菌落思想为核心,结合Pareto非支配解集算法设计了改进的蘑菇繁殖算法,对多目标选址问题进行优化求解。实验结果验证了模型的可行性和算法的有效性,并通过比较竞争者价格敏感度与交叉价格敏感度对优化目标的影响,为回收连锁店选址决策提供了参考。 展开更多
关键词 选址问题 回收连锁店 多目标优化 蘑菇繁殖算法
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基于双深度Q网络的车联网安全位置路由 被引量:1
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作者 米洪 郑莹 《无线电通信技术》 北大核心 2025年第1期96-105,共10页
作为智能交通系统中的支撑技术,车联网(Internet of Vehicle,IoV)已受到广泛关注。由于IoV网络拓扑结构的动态变化以及灰洞攻击,构建稳定的安全位置路由是一项挑战工作。为此,提出基于双深度Q网络的安全位置路由(Double DQN-based Secur... 作为智能交通系统中的支撑技术,车联网(Internet of Vehicle,IoV)已受到广泛关注。由于IoV网络拓扑结构的动态变化以及灰洞攻击,构建稳定的安全位置路由是一项挑战工作。为此,提出基于双深度Q网络的安全位置路由(Double DQN-based Secure Location Routing,DSLR)。DSLR通过防御灰洞攻击提升消息传递率(Message Delivery Ratio,MDR),并降低消息的传输时延。构建以丢包率和链路连通时间为约束条件的优化问题,利用双深度Q网络算法求解。为了提升DSLR的收敛性,基于连通时间、丢包率和传输时延构建奖励函数,引导智能体选择满足要求的转发节点。采用动态的探索因子机制,平衡探索与利用间的关系,进而加速算法的收敛。仿真结果表明,相比于同类算法,提出的DSLR提升了MDR,减少了传输时延。 展开更多
关键词 车联网 位置路由 灰洞攻击 双深度Q网络 动态的探索因子
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山区生鲜物流卡车-无人机联合集货路径规划 被引量:4
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作者 付朝晖 李君宇 刘长石 《计算机工程与应用》 北大核心 2025年第14期332-342,共11页
山区道路环境恶劣,部分区域卡车无法通行,导致生鲜农产品集货效率低下,严重影响其新鲜度与质量。为此,提出卡车-无人机联合集货模式,利用无人机为卡车无法通行区域客户提供集货服务。综合考虑山区道路通行状况、无人机能耗、容量、飞行... 山区道路环境恶劣,部分区域卡车无法通行,导致生鲜农产品集货效率低下,严重影响其新鲜度与质量。为此,提出卡车-无人机联合集货模式,利用无人机为卡车无法通行区域客户提供集货服务。综合考虑山区道路通行状况、无人机能耗、容量、飞行速度、生鲜农产品新鲜度、卡车容量与速度等因素,以总集货成本最小为目标,构建卡车-无人机联合集货的路径规划模型,并根据模型特性设计混合遗传算法进行求解,采用多类型算例开展仿真实验。计算结果表明,所提方法能够在较短时间内科学规划卡车-无人机联合集货路径,提升集货时效性,有效保障生鲜农产品的新鲜度与质量,货损成本仅占总价值的0.39%;与遗传算法、蚁群算法、粒子群算法相比,混合遗传算法能够节省1.11%、3.03%、1.51%的总集货成本,展现出优越的求解能力;卡车-无人机联合集货模式能够突破山区生鲜农产品物流“最先一公里”的发展瓶颈,助力生鲜农产品上行。 展开更多
关键词 生鲜农产品物流 “最先一公里” 卡车-无人机路径规划 混合遗传算法
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不确定车辆数的多约束车辆路径问题
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作者 马祥丽 马良 张惠珍 《计算机工程与应用》 北大核心 2025年第6期369-376,共8页
在经典车辆路径问题(vehicle routing problem,VRP)的基础上增加了客户要求访问的时间窗约束,以车辆行驶路径最短和使用车辆数最小为目标,建立了不确定车辆数的多约束车辆路径问题(multi-constraint vehicle routing problem with varia... 在经典车辆路径问题(vehicle routing problem,VRP)的基础上增加了客户要求访问的时间窗约束,以车辆行驶路径最短和使用车辆数最小为目标,建立了不确定车辆数的多约束车辆路径问题(multi-constraint vehicle routing problem with variable fleets,MVRP-VF)的数学模型。引入遗传算法的交叉操作以及大规模邻域搜索算法中的破坏算子和修复算子,重新定义了基本灰狼优化算法(grey wolf optimizer,GWO)的操作算子,优化了GWO的寻优机制,从而设计出用于求解MVRP-VF问题的混合灰狼优化算法(hybrid grey wolf optimizer,HGWO)。通过仿真实验与其他参考文献中的算法求解结果进行比较,验证了HGWO求解该类问题的有效性与可行性。 展开更多
关键词 交通工程 车辆路径问题 混合灰狼优化算法 不确定车辆数 时间窗
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基于改进遗传算法的智能实时餐厨垃圾收运路径优化
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作者 陈理 赖有春 +4 位作者 王帅北 刘海帆 马明旭 柳珊 周宇光 《农业机械学报》 北大核心 2025年第6期119-129,共11页
针对城市餐厨垃圾收运普遍面临的亏载超载、车辆尾气排放高、路径规划主观性强、综合成本高及商家满意度低等问题,根据城市餐厨垃圾的分布和收运特点,建立了基于交通流带时间窗的动态路径优化问题模型,并利用改进遗传算法进行求解。根... 针对城市餐厨垃圾收运普遍面临的亏载超载、车辆尾气排放高、路径规划主观性强、综合成本高及商家满意度低等问题,根据城市餐厨垃圾的分布和收运特点,建立了基于交通流带时间窗的动态路径优化问题模型,并利用改进遗传算法进行求解。根据实地调研数据,设计了静动态递进的6种优化策略,并设置单位平均收运成本(U-C)、单位平均碳排放量(U-T)及单位平均油耗(U-Y)用于衡量不同优化方案的经济性、环保性和能耗水平。实验结果表明,最小收运成本+时间窗(TW)被确认为最佳静态优化策略。与不带时间窗的情景相比在多使用1辆车的情况下U-C、U-T、U-Y分别降低8.16%、12.12%、10.48%。最小收运成本+TW+时间离散为最佳动态优化策略,该情景下较最佳静态优化策略总成本降低15.23%,油耗与碳排放均降低24.97%,U-C、U-T、U-Y分别下降25.85%、39.39%和36.36%。此外,验证了模拟智能垃圾桶获取实时餐厨垃圾量,在本模型中有进一步的优化效果。最后,对实际运行及6种优化情景进行了环境影响评价,验证了应用本模型,餐厨垃圾收运系统的调度效率均有提高,能够有效缓解因垃圾量随机波动带来的收运成本高与环境负效应等问题。 展开更多
关键词 餐厨垃圾收运 动态车辆路径问题 时间离散策略 遗传算法 智能垃圾桶
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车船协同的洪灾被困人员搜救路径鲁棒优化
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作者 周愉峰 龚英 +1 位作者 刘晓聪 何珺阳 《安全与环境学报》 北大核心 2025年第4期1455-1465,共11页
优化车船协同搜救路径,以提高洪灾被困人员搜救效率。首先,引入洪水模拟系统和匮乏成本函数,以总匮乏成本最小为目标,采用0-1混合整数规划,构建救援时间不确定且有公平性约束的被困人员搜救路径优化模型。之后,引入鲁棒优化方法,将模型... 优化车船协同搜救路径,以提高洪灾被困人员搜救效率。首先,引入洪水模拟系统和匮乏成本函数,以总匮乏成本最小为目标,采用0-1混合整数规划,构建救援时间不确定且有公平性约束的被困人员搜救路径优化模型。之后,引入鲁棒优化方法,将模型转化为等价的鲁棒优化模型。再根据模型约束特征设计若干修复算子,提出一种改进的禁忌搜索(Improved Tabu Search, ITS)算法。最后,设计两组算例验证模型和算法的有效性和可靠性。结果表明:考虑被困人员救援时间的不确定性有利于决策者优化救援方案;ITS性能优于传统禁忌搜索算法、遗传算法与模拟退火算法,对真实算例的平均优化效果分别为3.10%、15.76%与10.27%。研究成果可为应急管理部门优化被困人员搜救策略提供决策参考。 展开更多
关键词 公共安全 洪灾救援 车船协同 车辆路径问题 禁忌搜索算法
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考虑失效风险的国家血液战略储备网络选址-库存问题可靠性优化
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作者 周愉峰 许瑶 +1 位作者 程佳豪 孔繁钰 《灾害学》 北大核心 2025年第2期103-110,共8页
为提高应急血液保障能力,提出国家血液战略储备网络选址-库存决策的可靠性优化问题。以应急响应时效最优为目标,考虑多血型多阶段不确定应急需求、失效风险、预算限制、随机日常需求、库存容量限制、协同定位等因素,构建描述问题的混合... 为提高应急血液保障能力,提出国家血液战略储备网络选址-库存决策的可靠性优化问题。以应急响应时效最优为目标,考虑多血型多阶段不确定应急需求、失效风险、预算限制、随机日常需求、库存容量限制、协同定位等因素,构建描述问题的混合整数非线性规划模型。提出一种综合历史数据与专家知识的多源数据驱动方法。失效概率与应急需求等关键参数基于历史数据进行初步推演,并通过专家知识进行修正。针对模型,设计一种改进的离散粒子群算法(IDPSO)。结果表明,提出的IDPSO优于PSO;在网络设计阶段就考虑失效风险极为必要,可降低将来可能发生的应急损失。 展开更多
关键词 应急设施选址 选址-库存问题 失效风险 样本均值近似 粒子群算法
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运力短缺下的生活物资临时分配点选址-路径优化研究
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作者 李国旗 郝志丹 +1 位作者 杨佳鑫 程佳豪 《交通运输系统工程与信息》 北大核心 2025年第2期304-313,共10页
重大突发灾害容易引发运力资源短缺,这对受灾地区的生活物资保障工作构成挑战。据此,本文设计由物资中转站、临时分配点和需求点组成的3级配送网络,以便向受灾地区高效运送生活物资。考虑到生活物资临时分配点的配送能力限制和灾后运力... 重大突发灾害容易引发运力资源短缺,这对受灾地区的生活物资保障工作构成挑战。据此,本文设计由物资中转站、临时分配点和需求点组成的3级配送网络,以便向受灾地区高效运送生活物资。考虑到生活物资临时分配点的配送能力限制和灾后运力短缺,采用多车程与设施协作配送策略,构建以最小化剥夺成本为目标的混合整数规划模型,设计包含max-min、伪随机转移和多维信息素等策略的改进蚁群优化算法(IACO)对模型进行求解,数值结果证实了所开发方法在计算效率和求解质量方面的有效性。最后,以上海市松江区实际案例作为算例进行计算分析。结果表明:与独立配送相比,采用设施协作配送模式,可将剥夺成本降低40.68%,物资总分配量提升7.42%,剩余需求量方差减少13.18%。 展开更多
关键词 物流工程 选址-路径 改进的蚁群优化算法 应急物流 运力短缺
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基于卡车与无人机协同配送的乡村物流优化
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作者 覃睿 邹凌峰 《科学技术与工程》 北大核心 2025年第23期10067-10074,共8页
乡村物流的“最后一千米”配送一直是制约物流效率与成本优化的关键所在。随着农村地区物流配送需求的快速增加,针对单纯利用卡车开展乡村物流的配送效率低、成本高等问题,首先提出了一种结合卡车与无人机的选址-配送一体化优化模型,旨... 乡村物流的“最后一千米”配送一直是制约物流效率与成本优化的关键所在。随着农村地区物流配送需求的快速增加,针对单纯利用卡车开展乡村物流的配送效率低、成本高等问题,首先提出了一种结合卡车与无人机的选址-配送一体化优化模型,旨在最大化覆盖需求点的同时,通过优化无人机配送中心选址、卡车路径规划和无人机任务分配来最小化配送总成本。然后,基于这种协同配送模式,采用了遗传算法结合免疫优化机制,形成多重嵌套式遗传算法来求解。最后,以景德镇市浮梁县为例,通过仿真实验验证了所提模型在乡村物流场景中的可行性,并提出了最佳的全局配送方案。进一步的灵敏度分析表明,模型能够有效适应不同无人机类型的参数设置,选取的三款市售物流无人机在实际运行中均表现出良好的收敛效果,收敛值显著优于传统假设条件。 展开更多
关键词 乡村物流 卡车+无人机 免疫优化 配送中心选址 路径规划 任务分配
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