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Scene-aware driver state understanding in car-following behaviors

机译:后续行为中的场景感知驾驶员状态理解

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This research represents the heterogeneity in car following by a hidden variable driver state, which could change due to the driver's habit, fatigue, distraction, influence of surrounding traffic etc, resulting in the heterogeneous behaviors of such as fast or slow, strong or weak response to the same level of stimuli. A probabilistic method of driver state understanding is proposed by modeling and reasoning the heterogeneity in car-following behaviors, and the influence of surrounding traffic is addressed explicitly in addition to the leader-follower pair aiming at applications in crowded real-world traffic. Experiments are conducted by using the on-road trajectory data that were collected from motorways in Beijing, where four distinctive driver states and corresponding car-following models are learnt. With online understanding of driver state, the particular car-following model is used to predict the drivers velocity control, where results of improved accuracy are demonstrated.
机译:这项研究代表了汽车的异质性,其背后是一个隐藏的可变驾驶员状态,驾驶员状态,疲劳,分心,周围交通的影响等可能会改变驾驶员的异质性,从而导致诸如快速或慢速,响应强或弱等异质行为。到相同水平的刺激。通过对汽车跟随行为的异质性进行建模和推理,提出了一种驾驶员状态理解的概率方法,除了针对在拥挤的实际交通中的应用的领导者与追随者对之外,还明确解决了周围交通的影响。实验是利用从北京高速公路收集的道路轨迹数据进行的,其中学习了四种不同的驾驶员状态和相应的跟车模型。通过在线了解驾驶员状态,可以使用特定的跟车模型来预测驾驶员的速度控制,并在其中演示提高准确性的结果。

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