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Methodologies to Understand the Road User Needs When Interacting with Automated Vehicles

机译:在与自动车辆交互时,了解道路用户需求的方法

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Interactions among road users play an important role for road safety and fluent traffic. In order to design appropriate interaction strategies for automated vehicles, observational studies were conducted in Athens (Greece), Munich (Germany), Leeds (UK) and in Rockville, MD (USA). Naturalistic behaviour was studied, as it may expose interesting scenarios not encountered in controlled conditions. Video and LiDAR recordings were used to extract kinematic information of all road users involved in an interaction and to develop appropriate kinematic models that can be used to predict other's behaviour or plan the behaviour of an automated vehicle. Manual on-site observations of interactions provided additional behavioural information that may not have been visible via the overhead camera or LiDAR recordings. Verbal protocols were also applied to get a more direct recording of the human thought process. Realtime verbal reports deliver a richness of information that is inaccessible by purely quantitative data but they may pose excessive cognitive workload and remain incomplete. A retrospective commentary was applied in complex traffic environment, which however carries an increased risk of omission, rationalization and reconstruction. This is why it was applied while the participants were watching videos from their eye gaze recording. The commentaries revealed signals and cues used in interactions and in drivers' decision-making, that cannot be captured by objective methods. Multiple methods need to be combined, objective and qualitative ones, depending on the specific objectives of each future study.
机译:道路用户之间的互动在道路安全和流利的交通发挥着重要作用。为了设计自动车辆的适当互动策略,在雅典(希腊),慕尼黑(德国),利兹(英国)和MD(USA)的山区(美国)进行了观测研究。研究了自然主义行为,因为它可能暴露在受控条件下没有遇到的有趣情景。视频和激光雷达录音用于提取互动涉及的所有道路用户的运动信息,并开发适当的运动模型,可用于预测其他行为或计划自动车辆的行为。手动现场的交互观测提供了额外的行为信息,这些信息可能无法通过开销相机或激光雷达录制可见。口头协议也适用于获得人类思维过程的更直接记录。实时口头报告提供纯粹定量数据无法访问的信息丰富,但它们可能会造成过度认知工作量并保持不完整。复杂的交通环境中应用了回顾性评论,然而,遗漏,合理化和重建的风险增加。这就是为什么它应用的原因,而参与者从眼睛注视录音观看视频。评论揭示了互动和驱动程序决策中使用的信号和提示,无法通过客观方法捕获。根据每个未来研究的特定目标,需要组合多种方法,目标和定性。

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