A Network Traffic Model for the Control of Autonomous Vehicles Acting as Moving Bottlenecks

被引:8
作者
Li, Zhexian [1 ,2 ,3 ]
Levin, Michael W. W. [2 ]
Qu, Xu [1 ]
Stern, Raphael [2 ]
机构
[1] Southeast Univ, Sch Transportat, Nanjing 210018, Peoples R China
[2] Univ Minnesota, Dept Civil Environm & Geoengn, Minneapolis, MN 55455 USA
[3] Univ Southern Calif, Sonny Astani Dept Civil & Environm Engn, Los Angeles, CA 90089 USA
关键词
Autonomous vehicles; moving bottlenecks; Newell-Daganzo methods; link-transmission model; traffic control; VARIABLE-SPEED LIMIT; KINEMATIC WAVES; TRANSMISSION; FORMULATION; EXISTENCE; SCHEME;
D O I
10.1109/TITS.2023.3271187
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
In this work we present a traffic model to simulate network-level traffic evolution under the impact of controlled autonomous vehicles acting as moving bottlenecks. We first extend the Newell-Daganzo method to track the trajectories of moving bottlenecks and calculate the cumulative number of vehicles passing each moving bottleneck. By integrating the solutions to the cumulative number of vehicles passing moving bottlenecks and link nodes as boundary conditions in the link-transmission model, we can incorporate the impact of moving bottlenecks into the flow of traffic at a network scale. We present numerical simulation results that illustrate the effectiveness of the developed model to track the trajectories of the moving bottlenecks and simulate their impact on freeway traffic. Lastly, we present control applications of the developed model to trajectory optimization. The reduced fuel consumption associated with the careful control of AV trajectories in the moving bottleneck framework indicates the potential to considerably improve the flow of traffic by controlling the AVs in a mixed human and autonomous environment.
引用
收藏
页码:9004 / 9015
页数:12
相关论文
共 53 条
[1]   Continuous-time general link transmission model with simplified fanning, Part I: Theory and link model formulation [J].
Bliemer, Michiel C. J. ;
Raadsen, Mark P. H. .
TRANSPORTATION RESEARCH PART B-METHODOLOGICAL, 2019, 126 :442-470
[2]   Effects of Variable Speed Limit on Energy Consumption with Autonomous Vehicles on Urban Roads Using Modified Cell-Transmission Model [J].
Chen, Rongsheng ;
Zhang, Tab ;
Levin, Michael W. .
JOURNAL OF TRANSPORTATION ENGINEERING PART A-SYSTEMS, 2020, 146 (07)
[3]  
Chen RS, 2019, IEEE INT C INTELL TR, P4380, DOI 10.1109/ITSC.2019.8917343
[4]  
Cicic M, 2018, IEEE INT C INTELL TR, P766, DOI 10.1109/ITSC.2018.8569960
[5]   Lax-Hopf Based Incorporation of Internal Boundary Conditions Into Hamilton-Jacobi Equation. Part II: Computational Methods [J].
Claudel, Christian G. ;
Bayen, Alexandre M. .
IEEE TRANSACTIONS ON AUTOMATIC CONTROL, 2010, 55 (05) :1158-1174
[6]   Lax-Hopf Based Incorporation of Internal Boundary Conditions Into Hamilton-Jacobi Equation. Part I: Theory [J].
Claudel, Christian G. ;
Bayen, Alexandre M. .
IEEE TRANSACTIONS ON AUTOMATIC CONTROL, 2010, 55 (05) :1142-1157
[7]  
Daganzo C.F., 2005, P THE16TH INT S TRAN, P345
[8]   Moving bottlenecks: A numerical method that converges in flows [J].
Daganzo, CF ;
Laval, JA .
TRANSPORTATION RESEARCH PART B-METHODOLOGICAL, 2005, 39 (09) :855-863
[9]   A variational formulation of kinematic waves: basic theory and complex boundary conditions [J].
Daganzo, CF .
TRANSPORTATION RESEARCH PART B-METHODOLOGICAL, 2005, 39 (02) :187-196
[10]   On the numerical treatment of moving bottlenecks [J].
Daganzo, CF ;
Laval, JA .
TRANSPORTATION RESEARCH PART B-METHODOLOGICAL, 2005, 39 (01) :31-46