论文标题
混合双峰浴缸模型中的外围控制
Perimeter control in a mixed bimodal bathtub model
论文作者
论文摘要
外围控制涉及监视范围内的网络流量和调节流量流动以减轻高昂的影响。通过外围控制措施实施过境优先级,该措施允许在双峰运输系统中的有效策略,而无需在外围边界排队而不会排队。但是,尚未对旅行者的行为发生变化,以响应外围控制策略,例如其出发时间和运输模式的变化,尚未得到充分研究。因此,仍然存在重要的问题,例如在外围控制期间使用过境优先级的运输。本文研究了带有汽车和柔性路线运输(FRT)车辆的混合双峰运输系统中的Transit优先级对旅行者的行为的变化。我们在此类运输系统中选择了偏离时间和运输模式,并在FRT中具有超回避和不适感(称为混合双峰浴缸模型)。最初,我们研究了动态用户平衡的属性,而无需外围控制。然后,我们研究了外围控制期间的平衡模式。与现有作品不同,我们发现FRT乘客的数量会随着时间的时间而减少,并且该FRT可能不会在高峰时段的峰值附近使用。此外,过境优先级可能不足以促进FRT的使用,并且可能需要其他激励措施来补贴较低票价,以鼓励在外围控制期间使用FRT。最后,我们表明,即使在运输优先级的外围控制下,许多操作许多FRT车辆并不总是会降低平衡成本。
Perimeter control involves monitoring network-wide traffic and regulating traffic inflow to alleviate hypercongestion. Implementation of transit priority with perimeter control measures, which allow transit into a controlled area without queuing at the perimeter boundary, is an effective strategy in bimodal transportation systems. However, travelers' behavior changes in response to perimeter control strategies, such as shifts in their departure times and transportation modes, have not been fully investigated. Therefore, important questions remain, such as the use of transit during perimeter control with transit priority. This paper examines the travelers' behavior changes in response to perimeter control with transit priority in a mixed bimodal transportation system with cars and flexible route transit (FRT) vehicles. We model departure time and transportation mode choices in such a transportation system with hypercongestion and discomfort in FRT (called the mixed bimodal bathtub model). Initially, we investigate the properties of dynamic user equilibrium without perimeter control. Then, we study the equilibrium patterns during perimeter control with transit priority. Unlike existing works, we find that the number of FRT passengers decreases with time toward the desired arrival time and that FRT may not be used around the peak of rush hour. Furthermore, transit priority may not be sufficient to promote the use of FRT, and additional incentive such as subsidy for lower fares may be required to encourage FRT use during perimeter control. Finally, we show that operating many FRT vehicles does not always decrease the equilibrium cost, even under perimeter control with transit priority.