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Real-time Optimal Speed Coordination and Scheduling for High-speed Trains Based on Model Predictive Control

机译:基于模型预测控制的高速列车实时最优速度协调和调度

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In the high-speed train control system, the command information such as allowable running distance, time and speed can be sent by the global system for mobile communications for railways (GSM-R). This paper will propose the framework of real-time train scheduling and control based on model predictive control for the optimal speed set-points of high-speed trains. The rolling optimization process combines the genetic algorithm with the simulation of train operation to evaluate the performance of speed set-points, which can be easily implemented in the parallel computing, environment for real-time processing. The conflict resolution at the crossing stations is modeled by and embedded in the combination of various speed set-points which are formed from virtual to simulation speed. The final actual speed of train is engendered based on the movement authority and running time through the system of automatic train protection (ATP). The simulation results demonstrate the favorable performance of proposed method.
机译:在高速列车控制系统中,可以由全球系统提供用于铁路的移动通信(GSM-R)的全局系统发送诸如允许的运行距离,时间和速度的命令信息。本文将提出基于模型预测控制的实时列车调度和控制框架,以实现高速列车的最优速度设定点。轧制优化过程将遗传算法与仿真算法相结合,以评估速度设定点的性能,这可以在并行计算,实时处理环境中容易地实现。交叉站的冲突分辨率由各种速度设定点的组合建模并嵌入,这些速度设定点由虚拟到仿真速度形成。通过自动列车保护系统(ATP)的运动权和运行时间来引发列车的最终实际速度。仿真结果表明了所提出的方法的良好性能。

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