基于变步长多邻域搜索的异构车辆路由方法
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1.南京晓庄学院商学院,南京211171;2.南京大学商学院,南京210023;3.南京财经大学粮食和物资学院,南京210023;4.内蒙古工业大学机械工程学院,呼和浩特050051

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江苏省社会科学基金(22GLB026)。


Heterogeneous Vehicle Routing Method Based on Variable Step Multi-neighborhood Search
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1.School of Business, Nanjing Xiaozhuang University, Nanjing 211171, China;2.School of Business, Nanjing University, Nanjing 210023, China;3.School of Food and Material, Nanjing University of Finance and Economics, Nanjing 210023, China;4.School of Mechanical Engineering, Inner Mongolia University of Technology, Hohhot 050051, China

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    摘要:

    车辆路径规划问题是一类经典的、被证明为NP-hard的组合优化问题,其常被应用于交通物流与智能制造领域当中。然而,这类问题通常假设车辆具有同质性,难以刻画实际场景中车辆对不同商品种类运输能力的差异。为此,本文提出一种新的异构车辆路由问题(Heterogeneous vehicle routing problem,HVRP),通过引入商品种类属性与车辆运输能力约束,构建了描述车辆-订单匹配关系的整数规划模型,目标为最小化总运输距离。通过车辆类型对于商品种类的运输能力实现了车辆对客户可服务关系的形式化描述。为实现HVRP的高效求解,提出了变步长多邻域搜索(Variable step multi-neighborhood search,VSMNS)算法,并设计了路径编码与链表结合的解表示方法。最后,将 VSMNS 与遗传算法、混合遗传算法与人工蜂群算法在15个测试案例上进行对比实验。实验结果表明,VSMNS不仅在解质量上取得了优异的表现,且随问题规模的增大,算法性能优势更加显著。消融实验进一步验证了算法中的各个组件的作用,显示了所设计的局部算子的先进性。

    Abstract:

    The vehicle routing problem is a classic combinatorial optimization problem that has been proven to be NP-hard. It is widely applied to the fields of transportation logistics and intelligent manufacturing. However, such problems usually assume the homogeneity of vehicles, making it difficult to characterize the differences in vehicles transportation capabilities for different types of commodities in practical scenarios. To address it, a new heterogeneous vehicle routing problem (HVRP) is proposed. By introducing commodity type attributes and vehicle transportation capability constraints, an integer programming model describing the vehicle-order matching relationship is constructed, with the objective of minimizing the total transportation distance. The service relationship between vehicles and customers is formally described by modeling the transport capability of different vehicle types for various product categories. To achieve efficient optimization of the HVRP, a variable step multi-neighborhood search (VSMNS) algorithm is proposed, along with a solution representation method that combines path encoding with linked-list structures. Finally, comparative experiments are conducted among VSMNS with genetic algorithms, hybrid genetic algorithms and artificial bee colony algorithms on 15 test cases. Experimental results show that not only the VSMNS achieves excellent performance in solution quality, but also its performance advantages become more significant as the problem scale increases. Ablation experiments further verify the contribution of each component in the algorithm, demonstrating the effectiveness and superiority of the designed local operators.

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郑继媛,张少博,王鑫,王小波.基于变步长多邻域搜索的异构车辆路由方法[J].数据采集与处理,2025,40(6):1650-1660

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  • 收稿日期:2025-08-08
  • 最后修改日期:2025-10-06
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  • 在线发布日期: 2025-12-10