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Harnessing connected and automated vehicle technologies to control lane changes at freeway merge bottlenecks in mixed traffic

机译:利用连接和自动化的车辆技术来控制高速公路合并混合交通瓶颈的车道变化

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This paper proposes three control strategies for lane-changing (LC) at a merge bottleneck to improve bottleneck throughput by mitigating voids and speed disturbances in mixed traffic using connected and automated vehicle (CAV) technologies. Strategy 1 is 'gap closure' control, where an LC vehicle and its follower are controlled to close the void (extra time gap ahead) induced by the LC and prevent a backward-propagating speed disturbance. Strategy 2 is 'batch LC', where a group of LC vehicles are controlled to line up along a kinematic wave to minimize the total voids. Strategy 3 is 'gap redistribution' control, where extra gaps of vehicles are redistributed to periodically create large enough gaps for disturbance-free insertions. In a general control framework, the three strategies are integrated in different combinations exploiting their complementary nature. A numerical analysis shows that certain combinations, such as Strategy 2 and 3, can be very effective for improving bottleneck throughput. The analysis reveals insights on leveraging CAVs to develop traffic management strategies and/or policies and therefore improve system performance.
机译:本文提出了在合并瓶颈中进行车道变化(LC)的三种控制策略,以通过连接和自动化车辆(CAV)技术来改善混合交通中的空隙和速度扰动来提高瓶颈吞吐量。策略1是“间隙封闭”控制,其中控制LC车辆及其跟随器以关闭LC引起的空隙(额外时间间隙)并防止向后传播速度干扰。策略2是“批量LC”,其中控制一组LC车辆沿着运动波线排列,以最小化总空隙。策略3是“GAP再分配”控制,其中重新分配了车辆的额外差距,以定期为无干扰插入产生足够的空隙。在一般控制框架中,三种策略融入了互补性的不同组合中。数值分析表明,某些组合,例如策略2和3,可以非常有效地改善瓶颈吞吐量。该分析揭示了利用骑士队开发交通管理战略和/或政策的见解,从而提高了系统性能。

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