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A fuzzy-based customer classification method for demand-responsive logistical distribution operations

机译:需求响应物流配送业务的基于模糊的客户分类方法

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In some cases, customer classification is important for the development of advanced logistical distribution strategies in response to the growing complexity in business logistical markets. This paper presents a new approach that can be employed to cluster customers before executing fleet routing in logistical operations. The proposed approach is developed on the basis of fuzzy clustering techniques, and involves three sequential mechanisms including: (1) binary transformation, (2) generation of a fuzzy correlation matrix, and (3) customer clustering. Such a customer clustering method should be performed prior to vehicle dispatching and routing in the process of goods distribution. The proposed methodology clusters customers on the basis of their demand attributes, rather than the static geographic property which is considered extensively in most published vehicle routing algorithms. In addition to methodology development, a case study was conducted to demonstrate the potential advantages of the proposed fuzzy clustering based method. It is expected that this study can stimulate more research on time-based logistics control and management.
机译:在某些情况下,应对业务物流市场日益复杂的情况,客户分类对于开发高级物流分销策略很重要。本文提出了一种新方法,该方法可用于在后勤操作中执行机队路由之前对客户进行集群。所提出的方法是在模糊聚类技术的基础上开发的,并且涉及三个顺序机制,包括:(1)二进制变换,(2)模糊相关矩阵的生成以及(3)客户聚类。这种客户聚类方法应该在货物分配过程中的车辆调度和路线选择之前执行。所提出的方法基于顾客的需求属性而不是静态地理属性对顾客进行聚类,而静态地理属性在大多数已发布的车辆路径算法中被广泛考虑。除方法论发展外,还进行了案例研究,以证明所提出的基于模糊聚类的方法的潜在优势。预计这项研究可以激发更多有关基于时间的物流控制和管理的研究。

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