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Network planning of urban underground logistics system with hub-and-spoke layout: two phase cluster-based approach

机译:带辐条布局的城市地下物流系统网络规划:基于两相群的方法

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Purpose Underground logistics system (ULS) is recognized as sustainable alleviator to road-dominated urban logistics infrastructure with various social and environmental benefits. The purpose of this study is to propose effective modeling and optimization method for planning a hub-and-spoke ULS network in urban region. Design/methodology/approach Underground freight tunnels and the last-mile ground delivery were organized as a hierarchical network. A mixed-integer programming model (MIP) with minimum system cost was developed. Then a two-phase optimization schema combining Genetic-based fuzzy C-means algorithm (GA-FCM), Depth-first-search FCM (DFS-FCM) algorithm and Dijkstra algorithm (DA), etc. was designed to optimize the location-allocation of ULS facilities and customer clusters. Finally, a real-world simulation was conducted for validation. Findings The multistage strategy and hybrid algorithms could efficiently yield hub-and-spoke network configurations at the lowest objective cost. GA-FCM performed better than K-means in customer-node clustering. The combination of DFS-FCM and DA achieved superior network configuration than that of combining K-means and minimum spanning tree technique. The results also provided some management insights: (1) greater scale economies effect in underground freight movement could reduce system budget, (2) changes in transportation cost would not have obvious impact on ULS network layout and (3) over 90% of transportation process in ULS network took place underground, giving remarkable alleviation to road freight traffic. Originality/value This study has used an innovative hybrid optimization technique to address the two-phase network planning of urban ULS. The novel design and solution approaches offer insights for urban ULS development and management.
机译:目的地下物流系统(ULS)被公认为可持续的缓解,以具有各种社会和环境效益的道路主导的城市物流基础设施。本研究的目的是提出有效的建模和优化方法,用于规划城市地区的枢纽尺对ULS网络。设计/方法/方法地下货运隧道和最后一英里地区交付被组织为分层网络。开发了具有最小系统成本的混合整数编程模型(MIP)。然后,将基于遗传的模糊C型算法(GA-FCM),深度第一搜索FCM(DFS-FCM)算法和DIJKSTRA算法(DA)等的两相优化模式被设计为优化位置 - ULS设施和客户集群的分配。最后,进行了真实的仿真验证。调查结果多级策略和混合算法可以以最低目标成本有效地产生集线器和辐射网络配置。 GA-FCM在客户节点聚类中执行优于K-means。 DFS-FCM和DA的组合实现了卓越的网络配置,而不是K-means和最小生成树技术。结果还提供了一些管理层见解:(1)地下货运运动中的大规模经济效应可以减少系统预算,(2)运输成本的变化对ULS网络布局的影响无明显影响(3)超过90%的运输过程在ULS网络地下进行了地下,对道路货运交通提供了显着的缓解。本研究采用了一种创新的混合优化技术来解决城市ULS两相网络规划的创新混合优化技术。新颖的设计和解决方案方法为城市ULS开发和管理提供了见解。

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