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Optimization of Transit Priority in the Transportation Network Using a Genetic Algorithm

机译:基于遗传算法的交通网络公交优先权优化

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This paper proposes a detailed formulation to optimize transit road space priority at the network level and utilizes an efficient heuristic method to find the optimum solution. Previous approaches to transit priority have a localized focus in which only limited combinations of transit exclusive lanes could be assessed. The aim of this work is to reallocate the road space between private car and transit modes so that the system is optimized. A bilevel programming approach is adapted for this purpose. The upper level involves an objective function from the system managers' perspective, whereas at the lower level, a users' perspective is modeled. To take into account the major effects of a priority provision, three models are used: 1) a modal split; 2) a user equilibrium traffic assignment; and 3) a transit assignment. A genetic algorithm (GA) approach is used, which enables the method to be applied to large networks. Application of a parallel GA is also demonstrated in the solution method, which has a considerably shorter execution time. The methodology is applied to an example network, and results are discussed. It is found that the proposed methodology can successfully consider benefits of all stakeholders in the introduction of transit lanes. Furthermore, using parallel GA enables the methodology to be used for real-world-network scale in a shorter computer processing time.
机译:本文提出了一个详细的公式来优化网络级别的公交道路空间优先级,并利用一种有效的启发式方法来找到最佳解决方案。先前的过境优先权方法具有局限性,其中只能评估过境专用车道的有限组合。这项工作的目的是在私家车和公交方式之间重新分配道路空间,从而优化系统。为此,采用了双层编程方法。从系统管理员的角度来看,上层涉及目标功能,而在下层中,则以用户角度为模型。为了考虑优先权条款的主要影响,使用了三种模型:1)模态分割; 2)用户均衡流量分配; 3)运输任务。使用了一种遗传算法(GA)方法,该方法可以将该方法应用于大型网络。在解决方案方法中还演示了并行GA的应用,该解决方案的执行时间大大缩短。将该方法应用于示例网络,并讨论了结果。发现所提出的方法可以成功地考虑所有利益相关者在引入公交专用道时的利益。此外,使用并行GA可以使该方法在更短的计算机处理时间内用于实际网络规模。

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