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Passenger Flow-Oriented Train Disposition*

机译:以客流为导向的火车配置*

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Disposition management solves the decision problem whether a train should wait for incoming delayed trains or not. This problem has a highly dynamic nature due to a steady stream of update information about delayed trains. A dispatcher has to solve a global optimization problem since his decisions have an effect on the whole network, but he takes only local decisions for subnetworks (for few stations and only for departure events in the near future). In this paper, we introduce a new model for an optimization tool. Our implementation includes as building blocks (1) routines for the permanent update of our graph model subject to incoming delay messages, (2) routines for forecasting future arrival and departure times, (3) the update of passenger flows subject to several rerouting strategies (including dynamic shortest path queries), and (4) the simulation of passenger flows. The general objective is the satisfaction of passengers. We propose three different formalizations of objective functions to capture this goal. Experiments on test data with the train schedule of German Railways and real delay messages show that our disposition tool can compute waiting decisions within a few seconds. In a test with artificial passenger flows it is fast enough to handle the typical amount of decisions which have to be taken within a period of 15 minutes in real time.
机译:处置管理解决了火车是否应该等待进站的延迟火车的决策问题。由于有关延迟火车的更新信息源源不断,此问题具有高度动态的性质。调度员必须解决全局优化问题,因为其决策会对整个网络产生影响,但是调度员仅对子网进行本地决策(对于少数站点,仅针对不久的将来的离开事件)。在本文中,我们介绍了一种用于优化工具的新模型。我们的实现包括以下几个基本模块:(1)用于根据收到的延迟消息对图模型进行永久更新的例程;(2)用于预测未来到达和离开时间的例程;(3)根据几种重新路由策略进行的客流更新(包括动态最短路径查询),以及(4)模拟客流。总的目标是使乘客满意。我们提出目标功能的三种不同形式化以实现此目标。使用德国铁路公司的火车时刻表进行测试数据的实验和实际的延迟消息显示,我们的配置工具可以在几秒钟内计算等待决策。在使用人造客流的测试中,它足够快,可以实时处理必须在15分钟内完成的典型决策量。

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