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Study on the Stochastic Chance-Constrained Fuzzy Programming Model and Algorithm for Wagon Flow Scheduling in Railway Bureau

机译:铁路局货车流调度的随机机会约束模糊规划模型和算法研究

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The wagon flow scheduling plays a very important role in transportation activities in railway bureau. However, it is difficult to implement in the actual decision-making process of wagon flow scheduling that compiled under certain environment, because of the interferences of uncertain information, such as train arrival time, train classify time, train assemble time, and flexible train-size limitation. Based on existing research results, considering the stochasticity of all kinds of train operation time and fuzziness of train-size limitation of the departure train, aimed at maximizing the satisfaction of departure train-size limitation and minimizing the wagon residence time at railway station, a stochastic chance-constrained fuzzy multiobjective model for flexible wagon flow scheduling problem is established in this paper. Moreover, a hybrid intelligent algorithm based on ant colony optimization (ACO) and genetic algorithm (GA) is also provided to solve this model. Finally, the rationality and effectiveness of the model and algorithm are verified through a numerical example, and the results prove that the accuracy of the train work plan could be improved by the model and algorithm; consequently, it has a good robustness and operability.
机译:货车流量调度在铁路局的运输活动中起着非常重要的作用。但是,由于列车到达时间,列车分类时间,列车组装时间,灵活的列车编组等不确定信息的干扰,在一定环境下编制的车流调度的实际决策过程中很难实施。大小限制。基于现有研究结果,考虑到各种列车运行时间的随机性和出发列车的列车尺寸限制的模糊性,旨在最大程度地满足出发列车尺寸限制并最大程度地减少货车在火车站的停留时间,建立了柔性机会调度的随机机会约束模糊多目标模型。此外,还提供了一种基于蚁群优化(ACO)和遗传算法(GA)的混合智能算法来求解该模型。最后通过数值算例验证了模型和算法的合理性和有效性,结果证明该模型和算法可以提高列车工作计划的准确性。因此,它具有良好的鲁棒性和可操作性。

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