Online Optimization of Pickup and Delivery Problem Considering Feasibility

Future Internet Pub Date : 2024-02-17 DOI:10.3390/fi16020064
Ryo Matsuoka, Koichi Kobayashi, Y. Yamashita
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Abstract

A pickup and delivery problem by multiple agents has many applications, such as food delivery service and disaster rescue. In this problem, there are cases where fuels must be considered (e.g., the case of using drones as agents). In addition, there are cases where demand forecasting should be considered (e.g., the case where a large number of orders are carried by a small number of agents). In this paper, we consider an online pickup and delivery problem considering fuel and demand forecasting. First, the pickup and delivery problem with fuel constraints is formulated. The information on demand forecasting is included in the cost function. Based on the orders, the agents’ paths (e.g., the paths from stores to customers) are calculated. We suppose that the target area is given by an undirected graph. Using a given graph, several constraints such as the moves and fuels of the agents are introduced. This problem is reduced to a mixed integer linear programming (MILP) problem. Next, in online optimization, the MILP problem is solved depending on the acceptance of orders. Owing to new orders, the calculated future paths may be changed. Finally, by using a numerical example, we present the effectiveness of the proposed method.
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考虑可行性的取货和送货问题在线优化
多代理取货和送货问题有很多应用,例如食品配送服务和灾难救援。在这个问题中,有些情况下必须考虑燃料问题(例如使用无人机作为代理的情况)。此外,在某些情况下还需要考虑需求预测(例如,由少量代理承载大量订单的情况)。在本文中,我们考虑了一个考虑燃料和需求预测的在线取货和送货问题。首先,我们提出了有燃料限制的取货和送货问题。成本函数中包含了需求预测信息。根据订单,计算代理人的路径(例如,从商店到客户的路径)。我们假设目标区域由无向图给出。利用给定的图,我们引入了一些约束条件,如代理商的移动和燃料。这个问题被简化为混合整数线性规划(MILP)问题。接下来,在在线优化中,MILP 问题的解决取决于订单的接受情况。由于新订单的出现,计算出的未来路径可能会发生变化。最后,通过一个数值实例,我们展示了所提方法的有效性。
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