Please wait a minute...
文章检索
复杂系统与复杂性科学  2024, Vol. 21 Issue (3): 128-135    DOI: 10.13306/j.1672-3813.2024.03.017
  研究论文 本期目录 | 过刊浏览 | 高级检索 |
交通流频变路段智能网联车辆换道演化博弈机制
戴守晨, 曲大义, 孟奕名, 杨玉凤, 王其坤
青岛理工大学机械与汽车工程学院,山东 青岛 266520
Evolutionary Game Mechanisms of Lane Changing for Intelligent Connected Vehicles on Traffic Flow Frequently Changing Sections
DAI Shouchen, QU Dayi, MENG Yiming, YANG Yufeng, WANG Qikun
School of Mechanical and Automotive Engineering, Qingdao University of Technology, Qingdao 266520, China
全文: PDF(2992 KB)  
输出: BibTeX | EndNote (RIS)      
摘要 为研究城市交通流频变路段智能网联车辆换道博弈的演化机制和降低车辆换道的决策冲突,通过量化车辆收益和权重系数实现人车交互并建立演化动态方程,根据博弈系统的雅可比矩阵分析均衡点的稳定性,最后利用数值仿真决策演化路径并对影响因素进行灵敏度分析。结果表明不同驾驶决策的初始比例会影响决策的演化方向,左转绿灯时间增进车辆策略向(换道,让行)方向演化,随决策时刻位置减小增进车辆策略向(换道,让行)方向演化。
服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
戴守晨
曲大义
孟奕名
杨玉凤
王其坤
关键词 智能网联车辆交通流频变路段强制换道演化博弈    
Abstract:In order to study the evolutionary mechanism of lane changing for intelligent connected vehicles on urban traffic flow frequently changing sections and reduce the decision conflict of vehicle lane changing, the human-vehicle interaction was realized and the evolutionary dynamic equations were established by quantifying the vehicle revenue and weight coefficient. According to the Jacobi matrix of the game system, the stability of the equilibrium points were analyzed. Finally, the numerical simulation was used to determine the evolution path and the sensitivity analysis of the influencing factors was carried out. The results show that the initial ratio of different driving decisions will affect the evolution direction of the decision, and the left-turn green time will enhance the evolution of vehicle strategy in the direction of changing lane and giving way, and the evolution of vehicle strategy in the direction of changing lane and giving way as the position of decision time decreases.
Key wordsintelligent connected vehicles    traffic flow frequently changing sections    forced lane change    evolutionary game
收稿日期: 2022-12-15      出版日期: 2024-11-07
ZTFLH:  U491  
  U491.2  
基金资助:国家自然科学基金(52272311,51678320);山东省重点研发项目(2019GGX101038)
通讯作者: 曲大义(1973-),男,山东青岛人,博士,教授,主要研究方向为车路协同及安全控制。   
作者简介: 戴守晨(1999-),男,山东济南人,硕士研究生,主要研究方向为智能交通与网联驾驶。
引用本文:   
戴守晨, 曲大义, 孟奕名, 杨玉凤, 王其坤. 交通流频变路段智能网联车辆换道演化博弈机制[J]. 复杂系统与复杂性科学, 2024, 21(3): 128-135.
DAI Shouchen, QU Dayi, MENG Yiming, YANG Yufeng, WANG Qikun. Evolutionary Game Mechanisms of Lane Changing for Intelligent Connected Vehicles on Traffic Flow Frequently Changing Sections[J]. Complex Systems and Complexity Science, 2024, 21(3): 128-135.
链接本文:  
https://fzkx.qdu.edu.cn/CN/10.13306/j.1672-3813.2024.03.017      或      https://fzkx.qdu.edu.cn/CN/Y2024/V21/I3/128
[1] 丁建勋,郑杨边牧,张梦婷, 等.临近交叉口的车辆跟驰换道行为研究[J]. 交通运输系统工程与信息, 2017, 17(3): 60-66.
DING J X,ZHENG Y B M,ZHANG M T, et al. Car-following and lane-changing behaviors near an intersection[J]. Journal of Transportation Systems Engineering and Information Technology, 2017, 17(3): 60-66.
[2] 成卫,周通,李冰. 驾驶员变更车道对信号交叉口交通流的影响[J]. 昆明理工大学学报(自然科学版), 2021, 46(3): 149-154.
CHENG W, ZHOU T, LI B. Influence of driver changing lane on traffic flow at signalized intersections[J]. Journal of Kunming University of Science and Technology (Natural Sciences), 2021, 46(3): 149-154.
[3] ZHOU M F,YU Y,QU X B. Development of an efficient driving strategy for connected and automated vehicles at signalized intersections: a reinforcement learning approach[J]. IEEE Transactions on Intelligent Transportation Systems, 2020, 21(1): 433-443.
[4] 杨达,杨果,罗旭, 等. 考虑前车状态的智能网联车交叉口行为决策[J]. 西南交通大学学报, 2022, 57(2): 410-417,433.
YANG D,YANG G,LUO X, et al. Behavior decision of intelligent connected vehicles considering status of preceding vehicles at intersections[J]. Journal of Southwest Jiaotong University, 2022, 57(2): 410-417,433.
[5] 宗芳,石蕊,刘怿轩, 等. 信号交叉口行车风险场建立及车辆通行行为优化[J]. 中国公路学报, 2022, 35(10): 244-253.
ZONG F,SHI R,LIU Z X, et al. Construction of risk field and optimization of driving behaviors for signalized intersections[J]. China Journal of Highway and Transport, 2022, 35(10): 244-253.
[6] 叶颖俊,倪颖,孙剑. 高密度瓶颈交通流主动-回应汇入行为定义与建模[J]. 中国公路学报, 2022, 35(8): 278-290.
YE Y J,NI Y,SUN J. Defining and modeling active-responsive merging behavior at high-density expressway on-ramp bottlenecks[J]. China Journal of Highway and Transport, 2022, 35(8): 278-290.
[7] ZHANG K K,QU D Y,SONG H, et al. Analysis of lane-changing decision-making behavior and molecular interaction potential modeling for connected and automated vehicles[J]. Sustainability, 2022, 14(17): 1-20.
[8] 张可琨,曲大义,宋慧, 等. 自动驾驶车辆换道博弈策略分析及建模[J]. 复杂系统与复杂性科学, 2022, 12(7): 1-10.
ZHANG K K,QU D Y,SONG H, et al. Analysis and modeling for lane-changing game strategy of autonomous vehicles[J]. Complex Systems and Complexity Science, 2022, 12(7): 1-10.
[9] GUO J,HARMATI I. Lane-changing decision modelling in congested traffic with a game theory-based decomposition algorithm[J]. Engineering Applications of Artificial Intelligence, 2022, 107(5): 104530-50.
[10] QU D Y,ZHANG K K,SONG H, et al. Analysis and modeling of lane-changing game strategy for autonomous driving vehicles[J]. IEEE Access, 2022, 10(2): 69531-42.
[11] SHAO H P,ZHANG M R,FENG T, et al. A discretionary lane-changing decision-making mechanism incorporating drivers’heterogeneity: a signalling game-based approach[J]. Journal of Advanced Transportation, 2020, 10(16): 1-16.
[12] LADINO A,WANG M. A dynamic game formulation for cooperative and change strategies at highway merges[J]. IFAC-PapersOnLine. 2020, 53(2): 15059-64.
[13] 肖雪,李克平,彭博, 等. 基于决策-规划迭代框架的智驾车换道行为建模[J]. 吉林大学学报(工学版), 2023, 53(3): 746-757.
XIAO X,LI K P,PENG B, et al. Integrated lane-changing model of decision making and motion planning for autonomous vehicles[J]. Journal of Jilin University (Engineering Edition), 2023, 53(3): 746-757.
[14] 禹乐文,罗霞,刘仕焜. 复杂车路环境下自动驾驶车辆换道仿真研究[J]. 计算机仿真, 2021, 38(5): 146-152.
YU L W,LUO X,LIU S K. Research on simulation of lane-changing for autonomous vehicles under complex road conditions[J]. Computer Simulation, 2021, 38(5): 146-152.
[15] ZHANG X G,GAO J P,LI L, et al. Expressway lane change in fog environment by dynamic strategic game[J]. Journal of Advanced Transportation, 2022, 10(1): 1-10.
[16] PENG H,HUANG C,HU X Z, et al. Decision making for connected automated vehicles at urban intersections considering social and individual benefits[J]. IEEE Transactions on Intelligent Transportation Systems, 2022, 23: 22549-56.
[17] 杜筱婧,姚荣涵. 智能网联公交车出站强制换道的演化博弈机制[J]. 吉林大学学报(工学版), 2024, 54(1): 124-135.
DU X J,YAO R H. Evolutionary game mechanism of mandatory lane changing for exiting for intelligent connected bus[J]. Journal of Jilin University (Engineering Edition), 2024, 54(1): 124-135.
[18] 李超然,刘举胜,宋美,等, 演化博弈视角下的医患关系分析及对策研究[J]. 复杂系统与复杂性科学, 2022, 19(3): 44-54.
LI C R,LIU J S,SONG M, et al. Analysis of doctor-patient relationship and countermeasures from the perspective of evolutionary game[J]. Complex Systems and Complexity Science, 2022, 19(3): 44-54.
[19] 彭伟华,侯仁勇,李光红. 基于演化博弈的网络平台就业多元协同治理研究[J]. 复杂系统与复杂性科学, 2022, 19(2): 9-16,30.
PENG W H,HOU R Y,LI G H. Research on multiple collaborative governance of network platform employment based on evolutionary game[J]. Complex Systems and Complexity Science, 2022, 19(2): 9-16,30.
[20] 李春发,刘焕星,胡培培. 政府分类规制、智能平台赋能与药企CSR策略演化[J]. 复杂系统与复杂性科学, 2022, 19(2): 17-30.
LI C F,LIU H X,HU P P. Government classification regulation, intelligent platform empowerment and CSR strategy evolution of pharmaceutical enterprises[J]. Complex Systems and Complexity Science, 2022, 19(2): 17-30.
[1] 刘举胜, 李超然, 朱洁训, 邱志萍, 王梓懿. 公共体育场馆协同治理研究:基于演化博弈分析框架[J]. 复杂系统与复杂性科学, 2024, 21(3): 108-119.
[2] 韩普, 叶东宇, 顾亮. 奖惩机制下社区垃圾分类行为演化博弈研究[J]. 复杂系统与复杂性科学, 2024, 21(3): 120-127.
[3] 杨国忠, 周午阳. 基于供应链视角的企业协同生态创新演化博弈[J]. 复杂系统与复杂性科学, 2024, 21(2): 120-128.
[4] 王建华, 郝婷婷, 林超英, 朱敏. 政府监管机制下港口企业的社会责任履行研究[J]. 复杂系统与复杂性科学, 2024, 21(2): 147-153.
[5] 孙威威, 张峥. 基于复杂网络的电动汽车创新扩散博弈研究[J]. 复杂系统与复杂性科学, 2024, 21(2): 45-51.
[6] 谢振雨, 万安霞. 药品安全治理演化博弈及策略研究[J]. 复杂系统与复杂性科学, 2024, 21(2): 129-136.
[7] 吕洋, 刘忠轶, 张振源, 刘溪溪. 小餐饮商户接入食品安全溯源体系策略博弈研究[J]. 复杂系统与复杂性科学, 2024, 21(1): 145-151.
[8] 宋美, 王振源, 葛玉辉, 刘举胜. 混合所有制企业高管团队动态合作行为演化博弈分析[J]. 复杂系统与复杂性科学, 2024, 21(1): 85-91.
[9] 李春发, 俎晓彤, 田盖地. 价格竞争、保鲜努力与农产品电商冷链物流模式演化[J]. 复杂系统与复杂性科学, 2024, 21(1): 100-108.
[10] 谢逢洁, 姚欣, 王思一. 高阶结构对无标度网络上合作行为演化的影响[J]. 复杂系统与复杂性科学, 2024, 21(1): 12-19.
[11] 姜凤珍, 史晓妮. 社区建成环境改造中居民情绪传染机制及治理研究[J]. 复杂系统与复杂性科学, 2023, 20(4): 98-106.
[12] 陈陶, 冯文刚. 基于演化博弈的民航安检有效性提升研究[J]. 复杂系统与复杂性科学, 2023, 20(4): 77-84.
[13] 袁亮, 祁煜智, 何伟军, 李闻钦, 吴霞. 跨国界河流水资源冲突演化博弈模拟研究[J]. 复杂系统与复杂性科学, 2023, 20(3): 90-96.
[14] 张骥骧, 陈晓竹. 考虑氮素流通效率的生态补偿策略演化博弈分析[J]. 复杂系统与复杂性科学, 2023, 20(2): 90-97.
[15] 张鹏, 菅利荣, 王丹丹. 共生网络视角下工业园生态转型治理机制研究[J]. 复杂系统与复杂性科学, 2023, 20(1): 95-104.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed