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MODELING CAPACITY OF URBAN RAIL TRANSIT NETWORK BASED ON BI-LEVEL PROGRAMMING

机译:基于BI级规划的城市轨道交通网络建模能力

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Capacity index of Urban Rail Transit (URT) Network plays an improtant role in rational utilization of system capacity and operation management. A definition and calculating method of the capacity of URT Network was first proposed according to the features of URT network and route choice behavior of rail passengers in this paper. Several aspects of influencing factors of URT capacity were analyzed. A bi-level programming model was presented to optimize the URT capacity besides the system utility. Upper level of the model aims at maximizing the total OD flow through the URT network, and the lower level model is one kind of Fisk Equilibrium model. A new kind of impendence function relevant to the lower level model was put forward in consideration of practical traveler behavior. Genetic algorithm technique was applied to solve the bi-level programming model on the premise that the bi-level programming problem be converted into a single-level programming which was achieved by reformulating the lower-level problem model to its equivalent Karush-Kuhn-Tucker conditions. Effective crossover and mutation operators were proposed to enhance the convergence of the Genetic algorithm. A simplified network of Beijing URT was designed and numerical examples were conducted to prove that the proposed model and algorithm are feasible and valid in calculating the capacity of such network.
机译:城市轨道运输能力指数(URT)网络在系统容量和运营管理的合理利用中起着重要作用。首先根据网址网络的特征,提出了URT网络容量的定义和计算方法,并在本文中的铁路乘客的路由选择行为。分析了影响URT能力的影响因素的几个方面。除了系统实用程序之外,提出了一种双级编程模型以优化URT容量。模型的上层旨在最大化通过URT网络的总OD流程,较低级模型是一种FISK均衡模型。考虑到实际旅行者行为,提出了与较低级模型相关的新型封闭函数。应用遗传算法技术以解决双级编程模型的前提,即双级编程问题转换为单级编程,通过将较低级别的问题模型重新制定到其等效的Karush-Kuhn-tucker来实现的单级编程状况。提出了有效的交叉和突变算子以增强遗传算法的收敛性。设计了一种简化的北京网址网络,并进行了数值例子,以证明所提出的模型和算法是可行的,并且在计算这种网络的容量方面是有效的。

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