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Parking infrastructure design for repositioning autonomous vehicles

机译:停车基础设施设计重新定位自动车辆

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Fully automated vehicles (AVs) have the potential to drive empty (without a passenger). For privately-owned AVs, such empty repositioning has the potential benefit of avoiding parking costs at their destination. AV owners could have their vehicle drop them off at their destination, then drive elsewhere to park. Although previous studies have considered the congestion effects of AVs repositioning to park at their owner's residence, this study models the choice of parking location when AVs reposition away from the traveler's destination. We model this behavior through a modified static traffic assignment with a logit model for destination choice, in which AV passenger-carrying trips can create a second empty repositioning trip to an alternate parking zone. The traffic assignment is formulated as a variational inequality. Numerical results on the Chicago sketch network show the effects of AV market penetration, fuel costs, and parking fees on the number of repositioning trips, as well as the impacts of repositioning trips on network congestion. Next, we study the problem of adjusting zone-specific parking costs to influence the repositioning behavior. In particular, when zones have asymmetric parking infrastructure costs, optimized parking fees combined with empty repositioning can encourage AVs to park at cheaper locations, thus reducing the land used for parking at zones with high land value. This network design problem is formulated as a bi-level program. Since it is bi-level and non-convex, a genetic algorithm is used to find a good solution. Results on the Sioux Falls test network show that the adjusted parking costs are effective at reducing the congestion caused by empty repositioning and encouraging more optimal parking choices for repositioning AVs.
机译:全自动车辆(AVS)有可能驾驶空(没有乘客)。对于私人拥有的AVS,这种空的重新定位具有避免目的地停车成本的潜在好处。 AV业主可以让他们的车辆在目的地掉落,然后在其他地方开车去停车。虽然以前的研究已经考虑了AVS重新定位在其所有者住所停放的拥塞效果,但这研究模型在远离旅行者的目的地的AVS重新定位时,可以选择停车位置。我们通过具有用于目的地选择的Logit模型的修改的静态流量分配来模拟此行为,其中AV乘客旅行可以创建第二个空的重新定位到备用停车区。交通分配被制定为变分不等式。芝加哥素描网络上的数值结果显示了AV市场渗透,燃料成本和停车费对重新定位行程的数量的影响,以及重新定位旅行对网络拥塞的影响。接下来,我们研究调整特定区域的停车成本以影响重新定位行为的问题。特别是,当区域具有不对称的停车基础设施成本时,优化的停车费与空的重新定位相结合,可以鼓励AVS在更便宜的地点停车,从而减少了在具有高地价值的区域停放的土地。该网络设计问题被制定为双级程序。由于它是双级和非凸,因此遗传算法用于找到良好的解决方案。结果对Sioux Falls测试网络表明,调整后的停车成本在减少空置重新定位和鼓励更加最佳停车选择的情况下有效的停车成本有效。

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