配送和选择性取货单车辆路径问题的元启发式算法

B. P. Bruck, A. G. Santos, J. Arroyo
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引用次数: 2

摘要

在这项工作中,我们提出了一些元启发式方法来解决具有强制交付和选择性拾取的路由问题。文献中提出了两种整数规划公式,但它们只能求解小实例的最优性。本文还提出了一些贪婪启发式算法和元启发式算法:禁忌搜索、一般变量邻域搜索和进化算法。本文提出了一种迭代局部搜索算法和一种可变邻域搜索算法,改进了原有进化算法的性能。我们给出了68个实例的实验结果,并表明我们的方法在一些情况下优于其他方法,为其中21个问题找到了更好的解决方案。利用理论下界证明了8个实例解的最优性。
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Metaheuristics for the single vehicle routing problem with deliveries and selective pickups
In this work we propose some metaheuristics to solve a routing problem with mandatory deliveries and selective pickups. There are two integer programming formulations proposed in the literature but they are able to solve to optimality only small-sized instances. Some greedy heuristics and metaheuristics have also been proposed: Tabu Search, General Variable Neighborhood Search and Evolutionary Algorithm. Here we proposed an Iterated Local Search and a Variable Neighborhood Search algorithms, and improve the performance of the previous Evolutionary Algorithm. We present experimental results on 68 instances and show that our methods outperforms the others in several cases, finding better solutions for 21 of them. Using a theoretical lower bound we prove the optimality of the solutions for 8 instances.
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