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首页> 外文期刊>Control of Network Systems, IEEE Transactions on >How Will the Presence of Autonomous Vehicles Affect the Equilibrium State of Traffic Networks?
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How Will the Presence of Autonomous Vehicles Affect the Equilibrium State of Traffic Networks?

机译:自治车辆的存在如何影响交通网络的均衡状态?

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It is known that connected and autonomous vehicles are capable of maintaining shorter headway and distances when they form platoons of vehicles. Thus, such technologies can potentially increase the road capacities of traffic networks. Consequently, it is envisioned that their deployment will also increase the overall network mobility. In this paper, we examine the validity of this expected impact, assuming that drivers select their routes selfishly, in traffic networks with mixed vehicle autonomy, that is, traffic networks with both regular and autonomous vehicles. We consider a nonatomic routing game on a network with inelastic (fixed) demands for a set of network origin destination (O/D) pairs, and study how replacing a fraction of regular vehicles by autonomous vehicles will affect the mobility of the network. Using well-known U.S. Bureau of Public Roads traffic delay models, we show that the resulting Wardrop equilibrium is not necessarily unique for networks with mixed autonomy. Then, we state the conditions under which the total network delay at equilibrium is guaranteed to not increase as the fraction of autonomous vehicles increases. However, we show that when these conditions do not hold, counterintuitive behaviors may occur-the total network delay can grow as the fraction of autonomous cars increases. In particular, we prove that for networks with a single O/D pair, if the road degrees of capacity asymmetry (i.e., the ratio between the road capacity when all vehicles are regular and the road capacity when all vehicles are autonomous) are homogeneous, the total delay is: 1) unique and 2) a nonincreasing continuous function of the fraction of autonomous vehicles in the network. We show that for heterogeneous degrees of capacity asymmetry, the total delay is not unique, and it can further grow as the fraction of autonomous vehicles increases. We demonstrate that similar behaviors may be observed in networks with multiple O/D pairs. We further bound such performance degradations due to the introduction of autonomy in general homogeneous networks.
机译:众所周知,连接和自主车辆能够在形成车辆的镀胶时保持较短的入口和距离。因此,这些技术可能会增加交通网络的道路容量。因此,设想其部署还将增加整体网络移动性。在本文中,假设司机自私地选择他们的路线,在具有混合车辆自主的交通网络中选择他们的路线,即常规和自主车辆的交通网络,探讨了这一预期影响的有效性。我们考虑在网络上的网络上的非atomic路由游戏对一组网络原产目的地(O / D)对的需求,并研究自主车辆的常规车辆的一部分如何影响网络的移动性。使用公共道路的众所周知的美国局交通延误模型,我们表明由此产生的Wardrop Equilibium不一定是具有混合自主的网络独特的。然后,我们说明了在均衡的总网络延迟的条件,保证不会随着自主车辆的分数而增加而不会增加。然而,我们表明,当这些条件不保持时,可能发生反向行为 - 由于自主车的分数增加,总网络延迟可能会增长。特别是,我们证明,对于具有单个O / D对的网络,如果路径不对称(即,道路容量之间的比率,当所有车辆都是常规的,当所有车辆都是自主时)是均匀的,总延迟是:1)独特和2)网络中自动车辆分数的不释放连续功能。我们表明,对于异质程度的容量不对称,总延迟不是独特的,并且可以进一步增长,因为自主车辆的分数增加。我们证明可以在具有多个O / D对的网络中观察到类似的行为。由于在一般均质网络中引入自主性,我们进一步涉及这种性能下降。

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