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A Unified Framework for Vehicle Rerouting and Traffic Light Control to Reduce Traffic Congestion

机译:用于减少交通拥堵的车辆重新路由和交通灯控制的统一框架

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摘要

As the number of vehicles grows rapidly each year, more and more traffic congestion occurs, becoming a big issue for civil engineers in almost all metropolitan cities. In this paper, we propose a novel pheromone-based traffic management framework for reducing traffic congestion, which unifies the strategies of both dynamic vehicle rerouting and traffic light control. Specifically, each vehicle, represented as an agent, deposits digital pheromones over its route, while roadside infrastructure agents collect the pheromones and fuse them to evaluate real-time traffic conditions as well as to predict expected road congestion levels in near future. Once road congestion is predicted, a proactive vehicle rerouting strategy based on global distance and local pheromone is employed to assign alternative routes to selected vehicles before they enter congested roads. In the meanwhile, traffic light control agents take online strategies to further alleviate traffic congestion levels. We propose and evaluate two traffic light control strategies, depending on whether or not to consider downstream traffic conditions. The unified pheromone-based traffic management framework is compared with seven other approaches in simulation environments. Experimental results show that the proposed framework outperforms other approaches in terms of traffic congestion levels and several other transportation metrics, such as air pollution and fuel consumption. Moreover, experiments over various compliance and penetration rates show the robustness of the proposed framework.
机译:由于车辆的数量迅速增长,而且发生了越来越多的交通拥堵,几乎所有大都市城市的土木工程师都成为一个大问题。在本文中,我们提出了一种用于减少交通拥堵的新型信息素的交通管理框架,其统一了动态车辆重新排出和交通灯控制的策略。具体而言,作为代理商的每辆车,在其路线上沉积数字信息素,而路边基础设施代理收集信息素并融合它们以评估实时交通条件,并在不久的将来预测预期的道路拥堵水平。一旦预测道路拥堵,就基于全球距离和局部信息素的主动车辆重新路由策略用于在进入拥挤的道路之前将替代路线分配给所选车辆。同时,交通光控制代理商采取在线策略,以进一步缓解交通拥堵水平。我们提出并评估了两个交通灯控制策略,具体取决于是否考虑下游交通状况。基于统一的信息素的交通管理框架与仿真环境中的其他七种方法进行了比较。实验结果表明,该框架在交通拥堵水平和其他几种运输指标方面优于其他方法,例如空气污染和燃料消耗。此外,各种遵守和渗透率的实验表明了所提出的框架的鲁棒性。

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