The autonomous vehicle parking problem

被引:107
|
作者
Millard-Ball, Adam [1 ]
机构
[1] Univ Calif Santa Cruz, Dept Environm Studies, 1156 High St, Santa Cruz, CA 95064 USA
关键词
URBAN; TRANSPORTATION; ECONOMICS; IMPACTS; POLICY; COSTS;
D O I
10.1016/j.tranpol.2019.01.003
中图分类号
F [经济];
学科分类号
02 ;
摘要
Autonomous vehicles (AVs) have no need to park dose to their destination, or even to park at all. Instead, AVs can seek out free on-street parking, return home, or cruise (circle around). Because cruising is less costly at lower speeds, a game theoretic framework shows that AVs also have the incentive to implicitly coordinate with each other in order to generate congestion. Using a traffic microsimulation model and data from downtown San Francisco, this paper suggests that AVs could more than double vehicle travel to, from and within dense, urban cores. New vehicle trips are generated by a 90% reduction in effective parking costs, while existing trips become longer because of driving to more distant parking spaces and cruising. One potential policy response-subsidized peripheral parking-would likely exacerbate congestion through further reducing the cost of driving. Instead, this paper argues that the rise of AVs provides the opportunity and the imperative to implement congestion pricing in urban centers. Because the ability of AVs to cruise blurs the boundary between parking and travel, congestion pricing programs should include two complementary prices-a time-based charge for occupying the public right-of-way, whether parked or in motion, and a distance- or energy-based charge that internalizes other externalities from driving.
引用
收藏
页码:99 / 108
页数:10
相关论文
共 50 条
  • [31] Design and Implementation of Autonomous Parallel and Vertical Parking Mobile Vehicle
    Kizil, Abdullah
    Kutlucan, Arzuman Can
    Dogan, Cihad
    Kocak, Sena
    Sezer, Volkan
    2018 6TH INTERNATIONAL CONFERENCE ON CONTROL ENGINEERING & INFORMATION TECHNOLOGY (CEIT), 2018,
  • [32] Coordinated Autonomous Vehicle Parking for Vehicle-to-Grid Services: Formulation and Distributed Algorithm
    Lam, Albert Y. S.
    Yu, James J. Q.
    Hou, Yunhe
    Li, Victor O. K.
    IEEE TRANSACTIONS ON SMART GRID, 2018, 9 (05) : 4356 - 4366
  • [33] Design of Genetic Algorithm-Based Parking System for an Autonomous Vehicle
    Xiong, Xing
    Choi, Byung-Jae
    CONTROL AND AUTOMATION, AND ENERGY SYSTEM ENGINEERING, 2011, 256 : 50 - 57
  • [34] Intellegence Autonomous Parking Control System of Four-Wheeled Vehicle
    Filatov, Denis M.
    Serykh, Elena V.
    PROCEEDINGS OF THE XIX IEEE INTERNATIONAL CONFERENCE ON SOFT COMPUTING AND MEASUREMENTS (SCM 2016), 2016, : 154 - 156
  • [35] Visual SLAM-based Vehicle Control for Autonomous Valet Parking
    Jo Y.
    Hong S.
    Ha J.
    Hwang S.
    IEIE Transactions on Smart Processing and Computing, 2022, 11 (02): : 119 - 125
  • [36] Design and Implementation of an Intelligent Vehicle System for Autonomous Valet Parking Service
    Min, Kyoung-Wook
    Choi, Jeong-Dan
    2015 10TH ASIAN CONTROL CONFERENCE (ASCC), 2015,
  • [37] Trajectory Planning Methods for Bus Autonomous Parking with Vehicle Occupancy in Station
    Ma Q.
    Fu B.
    Feng M.
    Xinan Jiaotong Daxue Xuebao/Journal of Southwest Jiaotong University, 2022, 57 (01): : 74 - 82
  • [38] Modelling autonomous vehicle parking: An agent-based simulation approach
    Li, Wenhao
    Jia, Yewen
    Ji, Yanjie
    Blythe, Phil
    Li, Shuo
    IET INTELLIGENT TRANSPORT SYSTEMS, 2024, 18 (07) : 1237 - 1258
  • [39] Autonomous vehicle parallel parking design using function fitting approaches
    Wang, YJ
    Cartmell, MP
    ROBOTICA, 1998, 16 : 159 - 170
  • [40] A Motion Planning Method Addressing Arbitrary Lots for Autonomous Parking Vehicle
    Zeng, Dequan
    Yu, Zhuoping
    Xiong, Lu
    Xia, Lang
    Zhang, Peizhi
    Kang, Rong
    Li, Zhiqiang
    Fu, Zhiqiang
    Yao, Jie
    Zhou, Yi
    2019 IEEE INTELLIGENT TRANSPORTATION SYSTEMS CONFERENCE (ITSC), 2019, : 1462 - 1467