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首页> 外文期刊>Transportation Research Procedia >Driving Information in a Transition to a Connected and Autonomous Vehicle Environment: Impacts on Pollutants, Noise and Safety
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Driving Information in a Transition to a Connected and Autonomous Vehicle Environment: Impacts on Pollutants, Noise and Safety

机译:在过渡到连接和自主车辆环境的转型中的驾驶信息:对污染物,噪音和安全的影响

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The main objective of this vision paper is to present the project “DICA-VE: Driving Information in a Connected and Autonomous Vehicle Environment: Impacts on Safety and Emissions”, which aims to develop an integrated methodology to assess driving behavior volatility and develop warnings to reduce road conflicts and pollutants/noise emissions in a vehicle environment. A particular attention will be given to the interaction of motor vehicles with vulnerable road users (pedestrians and cyclists). The essence of assessing driving volatility aims the capture of the existence of strong accelerations and aggressive maneuvers. A fundamental understanding of instantaneous driving decisions (through a deep characterization of individual driver decision mechanisms, distinguishing normal from anomalous) is needed to develop a framework for optimizing these impacts. Thus, the research questions are: 1) Which strategies are adopted by each driver when he/she performs short-term driving decisions and how can these intentions be mapped, in a certain road network?; 2) How is driver’s volatility affected by the proximity of other road users, namely pedestrians or cyclists?; 3) How can driving volatility information be integrated into a platform to alert road users about potential dangers in the road infrastructure and prevent the occurrence of crash situations?; 4) How can anomalous driving variability be reduced in autonomous cars, in order to prevent road crashes and have a performance with a minimum degree of emissions? This paper brings a literature review on this topic and an evaluation of methods that can be used to assess driving behavior patterns and their influence on road safety, pollutant and noise emissions.
机译:本愿景文件的主要目标是介绍该项目“DICA-VE:在连接和自主车辆环境中驾驶信息:对安全和排放的影响”,旨在开发综合方法,以评估驾驶行为波动和发展警告减少车辆环境中的道路冲突和污染物/噪音排放。特别注意机动车辆与弱势道路使用者(行人和骑自行车者)的互动。评估驾驶波动性的本质旨在捕获强有力的加速和积极的演习。需要对瞬时驾驶决定的基本理解(通过各个驾驶员决策机制的深刻表征,区分正常的来自异常)来开发用于优化这些影响的框架。因此,研究问题是:1)当他/她执行短期驾驶决策时每个驾驶员采用哪些策略以及这些意图如何映射,在某个公路网中? 2)驾驶员的波动是如何受到其他道路用户的邻近的影响,即行人或骑自行车者? 3)如何将波动信息驾驶波动信息集成到一个平台上,以提醒道路用户潜在危险,并防止发生碰撞情况? 4)如何在自动驾驶汽车中减少异常的驱动变异,以防止道路崩溃并具有最低排放程度的性能?本文为该主题提供了一个文献综述,以及对可用于评估驾驶行为模式及其对道路安全性,污染物和噪声排放影响的方法的评估。

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