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Optimal inter-area coordination of train rescheduling decisions

机译:最佳地区区域培训决定决策的协调

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Railway dispatchers reschedule trains in real-time in order to limit the propagation of disturbances and to regulate traffic in their respective dispatching areas by minimizing the deviation from the off-line timetable. However, the decisions taken in one area may influence the quality and even the feasibility of train schedules in the other areas. Regional control centers coordinate the dispatchers' work for multiple areas in order to regulate traffic at the global level and to avoid situations of global infeasibility. Differently from the dispatcher problem, the coordination activity of regional control centers is still underinvestigated, even if this activity is a key factor for effective traffic management. This paper studies the problem of coordinating several dispatchers with the objective of driving their behavior towards globally optimal solutions. With our model, a coordinator may impose constraints at the border of each dispatching area. Each dispatcher must then schedule trains in its area by producing a locally feasible solution compliant with the border constraints imposed by the coordinator. The problem faced by the coordinator is therefore a bilevel programming problem in which the variables controlled by the coordinator are the border constraints. We demonstrate that the coordinator problem can be solved to optimality with a branch and bound procedure. The coordination algorithm has been tested on a large real railway network in the Netherlands with busy traffic conditions. Our experimental results show that a proven optimal solution is frequently found for various network divisions within computation times compatible with real-time operations.
机译:铁路调度员重新安排在实时列车,以限制扰动的传播,并通过最小化离线时间表的偏差来调节各自的调度区域的流量。然而,在一个领域采取的决定可能会影响其他地区列车日程的质量甚至是培训时间表的可行性。区域控制中心协调多个区域的调度员的工作,以规范全球一级的流量,并避免全球不可行的情况。与调度员问题不同,即使这项活动是有效交通管理的关键因素,区域控制中心的协调活动也仍然受到意识到。本文研究了协调几种调度员的问题,目的是推动他们对全球最佳解决方案的行为。通过我们的模型,协调员可能会对每个调度区域的边界施加约束。然后,每个调度员必须通过产生符合协调器施加的边界限制的本地可行的解决方案来安排其区域中的列车。因此,协调器面临的问题是一个彼此的彼此编程问题,其中由协调器控制的变量是边界约束。我们证明协调问题可以解决与分支和绑定程序的最优性。协调算法已经在荷兰的大型铁路网络上进行了测试,具有繁忙的交通状况。我们的实验结果表明,在与实时操作兼容的计算时间内,经常发现经过验证的最佳解决方案。

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