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Integrated condition-based track maintenance planning and crew scheduling of railway networks

机译:基于综合的条件轨道维护规划和铁路网络船员调度

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摘要

We develop a multi-level decision making approach for optimal condition-based maintenance planning of a railway network divided into a large number of sections with independent stochastic deterioration dynamics. At higher level, a chance-constrained Model Predictive Control (MPC) controller determines the long-term section-wise maintenance plan, minimizing condition deterioration and maintenance costs for a finite planning horizon, while ensuring that the deterioration level of each section stays below the maintenance threshold with a given probabilistic guarantee in the presence of parameter uncertainty. The resulting large MPC optimization problem containing both continuous and discrete decision variables is solved using Dantzig-Wolfe decomposition to improve the scalability of the proposed approach. At a lower level, the optimal short-term scheduling of the maintenance interventions suggested by the high-level controller and the optimal routing of the corresponding maintenance crew is formulated as a capacitated arc routing problem, which is solved exactly by transforming it into a node routing problem. The proposed approach is illustrated by a numerical case study on the optimal treatment of squats of a regional Dutch railway network. Simulation results show that the proposed approach is robust, non-conservative, and scalable.
机译:我们开发了一种多级别决策方法,以获得铁路网络的最佳条件维护规划,分为大量具有独立随机恶化动态的部分。在更高的级别时,一个机会约束的模型预测控制(MPC)控制器确定了长期部分维护计划,最大限度地减少了有限规划地平线的条件恶化和维护成本,同时确保每个部分的恶化水平保持在下方在参数不确定性存在下,具有给定概率保证的维护阈值。通过Dantzig-Wolfe分解解决了包含连续和离散决策变量的大MPC优化问题,以提高所提出的方法的可扩展性。在较低的级别下,高级控制器建议的维护干预的最佳短期调度以及相应的维护人员的最佳路由作为电容弧路由问题,这通过将其转换为节点来完全解决路由问题。所提出的方法是通过对区域荷兰铁路网络蹲下的最佳处理的数值研究来说明。仿真结果表明,该拟议方法是坚固的,非保守和可扩展的。

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