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Examination and prediction of drivers' reaction when provided with V2I communication-based intersection maneuver strategies

机译:基于V2I通信的交叉口机动策略时驾驶员反应的检查和预测

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摘要

Connected vehicle technology provides promising opportunities to improve road safety, enhance traffic efficiency, and reduce fuel consumption and emissions. It has been suggested that if drivers comply with suggested recommendations, connected vehicle technology can introduce huge benefits. However, whether drivers will accept suggestions and what factors will influence their likelihood of accepting the suggestions in a connected environment have not been studied. In addition, few models have been developed to predict drivers' reactions under such conditions. This paper aims to fill the research gap by examining and modeling drivers' acceptance and behavior when receiving energy- and safety-related speed recommendations through vehicle-to-infrastructure communications. A mixed-subject-design experiment was conducted in a closed-loop test track, Mcity, with seven intersection maneuver scenarios. A generally high compliance rate to the recommended speed strategies was observed that during 72% of the events, drivers changed their intersection-approaching behavior to follow the recommendations. Mixed models were conducted to explore the impacting factors while Principal Component Analysis was used to classify subjective (i.e., self-reported) data into four categories. To predict drivers' reactions when offered a speed suggestion, Random Forests were built with 13 independent variables, derived from four categories: vehicle kinematic features, device information, driver characteristics, and subjective data. Using this model, drivers' reactions during each intersection maneuver could be predicted with a reasonably high accuracy about 87.4 m away from the intersection, where the vehicle started to receive signal phase and timing information. Findings in this study can contribute to the optimization of energy-saving algorithms and the improvement of driving safety by using connected vehicle technologies.
机译:互联汽车技术为改善道路安全,提高交通效率以及减少油耗和排放提供了广阔的机遇。已经提出,如果驾驶员遵守建议的建议,则联网车辆技术可以带来巨大的好处。但是,尚未研究驾驶员是否会接受建议以及在互联环境中哪些因素会影响他们接受建议的可能性。此外,很少开发模型来预测驾驶员在这种情况下的反应。本文旨在通过对驾驶员通过车辆到基础设施的通信接收与能源和安全相关的速度建议时的接受程度和行为进行建模和建模,以填补研究空白​​。在具有七个交叉路口机动场景的闭环测试轨道Mcity中进行了混合对象设计实验。观察到对建议的速度策略的总体符合率很高,在72%的事件中,驾驶员更改了接近交叉路口的行为以遵循建议。进行了混合模型以探索影响因素,而主成分分析则用于将主观(即自我报告)数据分为四类。为了在提供速度建议时预测驾驶员的反应,随机森林建立了13个独立变量,该变量来自以下四个类别:车辆运动学特征,设备信息,驾驶员特征和主观数据。使用该模型,可以在距交叉路口约87.4 m处的合理的高精度下预测驾驶员在每个交叉路口操纵期间的反应,在交叉路口处,车辆开始接收信号相位和时间信息。这项研究的发现可以通过使用互联的车辆技术为节能算法的优化和驾驶安全性的提高做出贡献。

著录项

  • 来源
    《Transportation research》 |2019年第9期|17-28|共12页
  • 作者单位

    Univ Michigan Transportat Res Inst 2901 Baxter Rd Ann Arbor MI 48109 USA|Tongji Univ Coll Transportat Engn Minist Educ Key Lab Rd & Traff Engn 4800 Caoan Highway Shanghai 201804 Peoples R China;

    Univ Michigan Ind & Mfg Syst Engn Dept 4901 Evergreen Rd Dearborn MI 48128 USA|Univ Michigan Transportat Res Inst 2901 Baxter Rd Ann Arbor MI 48109 USA;

    Univ Michigan Ind & Mfg Syst Engn Dept 4901 Evergreen Rd Dearborn MI 48128 USA;

    Univ Michigan Transportat Res Inst 2901 Baxter Rd Ann Arbor MI 48109 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Connected vehicle technology; Vehicle-to-infrastructure; Driver reactions; Recommended speed strategies; User acceptance; Random forests;

    机译:互联汽车技术;车辆到基础设施;驾驶员反应;建议的速度策略;用户接受度;随机森林;

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