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Trip plan generation using optimization: A benchmark of freight routing and scheduling policies within the carload service segment

机译:使用优化生成行程计划:货运服务细分市场中的货运路线和调度策略基准

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摘要

The rail freight carload service segment enables the distribution of freight volumes down to the unit of single rail cars, and stand as an important alternative to road transportation. However, this service segment is often associated with significant uncertainties and variations in daily freight volumes. Such uncertainties are challenging to manage since operating plans generally are established long in advance of operations. Flexibility can instead be found in the way trip plans are generated. Previous research has shown that a commonly used trip plan generation policy does not exploit the available flexibility to the full extent. In this paper, we therefore suggest an optimization-based freight routing and scheduling (OFRS) policy to address the rail freight trip plan generation problem. This OFRS-policy generates trip plans for rail cars while still restricted by the customer commitments. The policy involves a MIP formulation with a continuous time representation and is solved by commercial software. We apply the OFRS-policy on a case built on real data provided by the Swedish rail freight operator, Green Cargo, and assess the performance of the policy comparing the current industry practice. The results show that by using the OFRS policy, we can achieve a reduction in the total transportation times, number of shunting activities and potentially also a reduction in the service frequency given the considered transport demand.
机译:铁路货运服务部分可将货运量分配至单轨车辆,是公路运输的重要替代方案。但是,该服务领域通常与每日货运量的重大不确定性和变化相关。这种不确定性很难管理,因为运营计划通常是在运营之前就制定的。相反,可以在旅行计划的生成方式中找到灵活性。先前的研究表明,常用的出行计划生成策略没有充分利用可用的灵活性。因此,在本文中,我们提出了一种基于优化的货运路由和调度(OFRS)策略,以解决铁路货运行程计划生成问题。 OFRS的这项政策会为铁路车辆制定出行计划,同时仍会受到客户承诺的限制。该策略涉及具有连续时间表示的MIP公式,并由商业软件解决。我们将OFRS策略应用于以瑞典铁路货运运营商Green Cargo提供的真实数据为基础的案例,并通过比较当前行业惯例评估该策略的效果。结果表明,通过使用OFRS策略,在考虑了运输需求的情况下,我们可以减少总运输时间,调车活动数量,并有可能减少服务频率。

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