多式联运货物运输作业规划的整数规划与蚁群优化

D. Anghinolfi, M. Paolucci, S. Sacone, S. Siri
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引用次数: 6

摘要

本文研究了多式联运网络中运输作业的作业规划问题。目标是通过使用公路车辆和火车来满足给定的运输需求,以尽量减少总运输成本并满足一系列操作限制。我们提出了一个线性整数规划模型和一个纯和混合版本的蚁群优化元启发式方法。我们给出并比较了在随机生成的问题实例组成的基准集上测试所有方法所获得的结果。测试显示了IP模型的可观行为,然而这需要相当多的时间,并且混合蚁群算法能够以相当少的计算工作量为所有基准实例生成高质量的解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integer programming and ant colony optimization for planning intermodal freight transportation operations
In this paper we deal with the operational planning of transportation operations in an intermodal network. The objective is to satisfy a given transportation demand by using road vehicles and trains, in order to minimize the total transportation cost and meeting a set of operational constraints. We propose a linear integer programming model and an Ant Colony Optimization metaheuristic approach in a pure and a hybrid version. We present and compare the results obtained testing all the approaches on a benchmark set made of randomly generated problem instances. The tests show the appreciable behavior of the IP model, that however requires a considerable amount of time, and the ability of the hybrid ACO to generate high quality solutions for all the benchmark instances with a quite reduced computational effort.
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