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A vehicle-to-infrastructure communication based algorithm for urban traffic control

机译:基于基于车辆到基于的城市交通控制算法

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We present in this paper a new algorithm for urban traffic light control with mixed traffic (communicating and non communicating vehicles) and mixed infrastructure (equipped and unequipped junctions). We call equipped junction here a junction with a traffic light signal (TLS) controlled by a road side unit (RSU). On such a junction, the RSU manifests its connectedness to equipped vehicles by broadcasting its communication address and geographical coordinates. The RSU builds a map of connected vehicles approaching and leaving the junction. The algorithm allows the RSU to select a traffic phase, based on the built map. The selected traffic phase is applied by the TLS; and both equipped and unequipped vehicles must respect it. The traffic management is in feedback on the traffic demand of communicating vehicles. We simulated the vehicular traffic as well as the communications. The two simulations are combined in a closed loop with visualization and monitoring interfaces. Several indicators on vehicular traffic (mean travel time, ended vehicles) and IEEE 802.11p communication performances (end-to-end delay, throughput) are derived and illustrated in three dimension maps. We then extended the traffic control to a urban road network where we also varied the number of equipped junctions. Other indicators are shown for road traffic performances in the road network case, where high gains are experienced in the simulation results.
机译:我们在本文中展示了一种新的城市交通灯控制算法,具有混合交通(沟通和非沟通车辆)和混合基础设施(配备和未甲基交叉区)。我们在这里调用配合交叉点,该交界处具有由道路侧单元(RSU)控制的交通灯信号(TLS)。在这样的交界处,RSU通过广播其通信地址和地理坐标来表现其对装备车辆的连接。 RSU建立了接近和离开交界的连接车辆的地图。该算法允许RSU基于内置地图选择流量阶段。所选的流量阶段由TLS应用;既有装备和未煮熟的车辆都必须尊重它。交通管理是关于沟通车辆的交通需求的反馈。我们模拟了车辆交通以及通信。两种模拟在具有可视化和监视接口的闭环中组合。在三维映射中导出和IEEE 802.11p通信性能(平均行程时间,结束车辆)和IEEE 802.11p通信执行(端到端延迟,端到端延迟吞吐量)上的几个指标。然后,我们将交通管制扩展到城市道路网络,在那里我们也各种各样的配备交叉点数量。其他指标显示在道路网箱中的道路交通表演,在仿真结果中经历了高收益。

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