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An Inverse Robust Optimisation Approach for a Class of Vehicle Routing Problems under Uncertainty

机译:一类不确定性下一类车辆路径问题的反向强大的优化方法

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摘要

There is a trade-off between the total penalty paid to customers (TPC) and the total transportation cost (TTC) in depot for vehicle routing problems under uncertainty (VRPU).The trade-off refers to the fact that the TTC in depot inevitably increases when the TPC decreases and vice versa. With respect to this issue, the vehicle routing problem (VRP) with uncertain customer demand and travel time was studied to optimise the TPC and the TTC in depot. In addition, an inverse robust optimisation approach was proposed to solve this kind of VRPU by combining the ideas of inverse optimisation and robust optimisation so as to improve both the TPC and the TTC in depot.The method aimed to improve the corresponding TTC of the robust optimisation solution under the minimum TPC through minimising the adjustment of benchmark road transportation cost. According to the characteristics of the inverse robust optimisation model, a genetic algorithm (GA) and column generation algorithm are combined to solve the problem. Moreover, 39 test problems are solved by using an inverse robust optimisation approach: the results show that both the TPC and TTC obtained by using the inverse robust optimisation approach are less than those calculated using a robust optimisation approach.
机译:在不确定性(VRPU)下,向客户(TPC)和仓库中的总罚款和总运输成本(TTC)之间有权衡。权衡是指TTC在仓库中不可避免地的事实当TPC减少时增加,反之亦然。关于这个问题,研究了客户需求和旅行时间不确定的车辆路由问题(VRP),以优化TPC和DTC在仓库中。此外,提出了一种反向稳健的优化方法,以通过组合逆优化和鲁棒优化的思想来解决这种VRPU,以便改进TPC和TTC在仓库中。旨在改善强大的相应TTC的方法最小TPC下的优化解决方案通过最大限度地减少基准道路运输成本的调整。根据反稳健优化模型的特征,组合遗传算法(GA)和列生成算法以解决问题。此外,通过使用逆稳健的优化方法来解决39个测试问题:结果表明,通过使用逆鲁棒优化方法获得的TPC和TTC都小于使用鲁棒优化方法计算的TPC和TTC。

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