自然驾驶研究中使用车道语义进行数据缩减的驾驶分析

R. Satzoda, Pujitha Gunaratne, M. Trivedi
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引用次数: 18

摘要

自然驾驶研究(NDS)提供了关于驾驶行为和特征的关键信息,这些行为和特征可能导致碰撞和接近碰撞。这些研究涉及对来自多个传感器的大量数据进行分析,关键事件的检测和提取是NDS的重要步骤。本文介绍了与车辆中的其他传感器一起分析视觉数据的技术,以确定与车道漂移、道路偏离和道路划定相关的关键事件。据作者所知,这是第一个检测和提取NDS研究(如战略公路研究计划2 (SHRP2))的可视化参考词典中列出的事件的工作。详细的评估与现实世界的NDS数据提出。
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Drive analysis using lane semantics for data reduction in naturalistic driving studies
Naturalistic driving studies (NDS) provide critical information about driving behaviors and characteristics that could lead to crashes and near-crashes. Such studies involve analysis of large volumes of data from multiple sensors and detection and extraction of critical events is an important step in NDS. This paper introduces techniques that analyze the visual data complemented with other sensors in the vehicle to determine critical events related to lane drifts, road departures and road delineations. To the best knowledge of the authors, this is the first work that detects and extract events listed in visual reference dictionary of NDS studies like Strategic Highway Research Program 2 (SHRP2). Detailed evaluations with real-world NDS data is presented.
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