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A Simultaneous Solution for Reserve Capacity Maximization and Delay Minimization Problems in Signalized Road Networks

机译:信号路网络中储备容量最大化和延迟最小化问题的同时解决方案

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摘要

In this study, we present a bilevel programming model in which upper level is defined as a biobjective problem and the lower level is considered as a stochastic user equilibrium assignment problem. It is clear that the biobjective problem has two objectives: the first maximizes the reserve capacity whereas the second minimizes performance index of a road network. We use a weighted-sum method to determine the Pareto optimal solutions of the biobjective problem by applying normalization approach for making the objective functions dimensionless. Following, a differential evolution based heuristic solution algorithm is introduced to overcome the problem presented by use of biobjective bilevel programming model. The first numerical test is conducted on two-junction network in order to represent the effect of the weighting on the solution of combined reserve capacity maximization and delay minimization problem. Allsop & Charlesworth’s network, which is a widely preferred road network in the literature, is selected for the second numerical application in order to present the applicability of the proposed model on a medium-sized signalized road network. Results support authorities who should usually make a choice between two conflicting issues, namely, reserve capacity maximization and delay minimization.
机译:在这项研究中,我们介绍了一种双层编程模型,其中上层被定义为生物页面问题,并且较低级别被认为是随机用户均衡分配问题。很明显,生物回弹问题有两个目标:第一次最大化储备容量,而第二个目的是最大限度地减少道路网络的性能指数。我们使用加权方法来通过应用归一化方法使目标函数无量纲的归一化方法来确定生物回物问题的帕累托最优解。接下来,引入了一种基于差分演化的启发式解决方案算法来克服使用生物回形来的双翼飞行编程模型所呈现的问题。第一数值测试是在双结网络上进行的,以表示加权对组合储备容量最大化和延迟最小化问题的效果。 Allsop&Charlesworth的网络是文献中广泛优选的道路网络,选择了第二个数值应用,以便在中尺寸信号通知道路网络上呈现所提出的模型的适用性。结果支持当局通常在两个冲突问题之间做出选择,即储备容量最大化和延迟最小化。

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