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A hybrid VNS/Tabu search algorithm for solving the vehicle routing problem with drones and en route operations

机译:VNS / Tabu混合搜索算法,用于解决带有无人机和在途操作的车辆路径问题

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With the goal of integrating drones in last-mile delivery, the Vehicle Routing Problem with Drones (VRPD) uses a fleet of vehicles, each of them equipped with a set of drones, for serving a set of customers with minimal makespan. In this paper, we propose an extension of the VRPD that we call the Vehicle Routing Problem with Drones and En Route Operations (VRPDERO). Here, in contrast to the VRPD, drones may not only be launched and retrieved at vertices but also on some discrete points that are located on each arc. We formulate the problem as a Mixed Integer Linear Program (MILP) and introduce some valid inequalities that enhance the performance of the MILP solvers. Furthermore, due to limited performance of the solvers in addressing large-scale instances, we propose an algorithm based on the concepts of Variable Neighborhood Search (VNS) and Tabu Search (TS). In order to evaluate the performance of the introduced algorithm as well as the solver in solving the VRPDERO instances, we carried out extensive computational experiments. According to the numerical results, the proposed valid inequalities and the heuristic have a significant contribution in solving the VRPDERO effectively. In addition, the consideration of en route operations can increase the utilization of drones and lead to an improved makespan. (C) 2019 Elsevier Ltd. All rights reserved.
机译:为了将无人机集成到最后一英里的交付中,带无人机的车辆路径问题(VRPD)使用了一批车辆,每辆车辆都配备了一组无人机,以最小的制造时间为一组客户提供服务。在本文中,我们提出了VRPD的扩展,我们称其为“无人驾驶飞机和途中操作的车辆路线问题”(VRPDERO)。在这里,与VRPD相比,无人机不仅可以在顶点处发射和取回,而且可以在每个圆弧上的一些离散点上发射和取回。我们将问题表述为混合整数线性程序(MILP),并引入了一些有效的不等式,从而提高了MILP求解器的性能。此外,由于求解器在处理大型实例中的性能有限,我们提出了基于可变邻域搜索(VNS)和禁忌搜索(TS)概念的算法。为了评估引入的算法以及求解器在解决VRPDERO实例方面的性能,我们进行了广泛的计算实验。根据数值结果,所提出的有效不等式和启发式方法对于有效地解决VRPDERO具有重要意义。另外,在途操作的考虑可以增加无人机的利用率并导致改进的制造期限。 (C)2019 Elsevier Ltd.保留所有权利。

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