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Real-time optimization strategy for single-track high-speed train rescheduling with disturbance uncertainties: A scenario-based chance-constrained model predictive control approach

机译:具有干扰不确定性的单轨高速列车重新安排的实时优化策略:一种基于场景的机会约束模型预测控制方法

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摘要

To improve the operational efficiency of high-speed railway system with disturbance uncertainties, a real-time optimization rescheduling strategy is designed based on the updated information for single-track high-speed railway system in this paper. Based on the characteristics of high-speed railway lines, a mixed-integer linear optimization model is constructed, where the decision variables involve the arrival times, departure times, arrival orders, departure orders and dwelling plans. Furthermore, to satisfy real-time requirements and to enhance the robustness of solutions, a scenario-based chance-constrained model predictive control (SC-MPC) algorithm is designed for solving the train rescheduling problem. Under the designed algorithm, the original linear model is converted to a non-linear mixed-integer model. To reduce the computational burden, the nonlinear model is converted to a linear mixed-integer model by a linearization method. The proposed strategy is compared with several typical benchmark strategies via a case study on the Beijing-Shanghai high-speed railway line. The simulation results show that the train delays can be effectively reduced by the proposed strategy and the rescheduling timetable has a good robustness. (C) 2020 Elsevier Ltd. All rights reserved.
机译:为了提高具有扰动不确定性的高速铁路系统的运行效率,基于本文的单轨高速铁路系统的更新信息设计了实时优化重新安排策略。基于高速铁路线的特点,构建了混合整数线性优化模型,其中决策变量涉及到达时间,出发时间,到达订单,离开订单和住宅计划。此外,为了满足实时要求并增强解决方案的鲁棒性,设计了一种基于方案的机会约束模型预测控制(SC-MPC)算法,用于解决列车重新安排问题。在设计的算法下,原始线性模型被转换为非线性混合整数模型。为了降低计算负担,通过线性化方法将非线性模型转换为线性混合整数模型。拟议的战略与北京 - 上海高速铁路线案例研究相比,与几种典型的基准战略进行了比较。仿真结果表明,通过所提出的策略可以有效地减少火车延迟,重新安排的时间表具有良好的鲁棒性。 (c)2020 elestvier有限公司保留所有权利。

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