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Integrating congestion pricing and transit investment planning

机译:整合拥堵定价和公交投资计划

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This paper develops a mathematical model and solution procedure to identify an optimal zonal pricing scheme for automobile traffic to incentivize the expanded use of transit as a mechanism to stem congestion and the social costs that arise from that congestion. The optimization model assumes that there is a homogenous collection of users whose behavior can be described as utility maximizers and for which their utility function is driven by monetary costs. These monetary costs are assumed to be the tolls in place, the per mile cost to drive, and the value of their time. We assume that there is a system owner who sets the toll prices, collects the proceeds from the tolls, and invests those funds in transit system improvements in the form of headway reductions. This yields a bi-level optimization model which we solve using an iterative procedure that is an integration of a genetic algorithm and the Frank-Wolfe method. The method and solution procedure is applied to an illustrative example. (C) 2016 Published by Elsevier Ltd.
机译:本文开发了一种数学模型和求解程序,以为汽车交通确定最佳的区域定价方案,以激励人们广泛使用公交作为阻止交通拥堵的机制,以及由此引发的社会成本。优化模型假设存在一个同质的用户集合,其行为可以描述为效用最大化,并且其效用函数由金钱成本驱动。这些货币成本被假定为实际通行费,每英里行驶成本以及其时间价值。我们假设有一个系统所有者来设定通行费价格,从通行费中收取收益,然后将这些资金以减少车距的形式投资于公交系统的改进。这产生了一个双层优化模型,我们使用迭代过程求​​解该过程,该过程是遗传算法和Frank-Wolfe方法的集成。该方法和解决过程应用于说明性示例。 (C)2016由Elsevier Ltd.出版

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