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Sensitivities and uncertainties of eco-driving algorithm estimating train power consumption

机译:估算列车功耗的生态驾驶算法的敏感性和不确定性

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This paper describes a study of uncertainty propagation through the Train Simulator Algorithm (TSA). The algorithm is used to estimate train driving time, consumed and regenerated energy. These output quantities are important to optimize the driving profile of the train and minimize energy spending. The uncertainty propagation was calculated using the Monte Carlo method. The sensitivity of output uncertainties on the input uncertainties was evaluated for two different train tracks in Spain, Madrid Metro, and in Italy, Bolonia-Ozzano. Results will be used to improve eco-driving profiles.
机译:本文介绍了通过火车模拟器算法(TSA)的不确定性传播的研究。该算法用于估计火车驾驶时间,消耗和再生能量。这些输出量对于优化火车的驾驶轮廓并最大限度地减少能源支出非常重要。使用蒙特卡罗方法计算不确定性繁殖。在西班牙,马德里地铁和意大利,Bolonia-Ozzano的两种不同火车轨道评估了对输入不确定性的产出不确定性的敏感性。结果将用于改善生态驾驶型材。

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