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Safe Driving : Driver Action Recognition using SURF Keypoints

机译:安全驾驶:使用SURF关键点的驾驶员动作识别

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Driver distraction is one of the main factors of fatal road traffic injuries. According to the national Highway Traffic Safety Administration (NHTSA), in USA, 3450 are killed by distracted driving, in 2016. In order to save lives, Advanced Driver Assistance Systems (ADAS), more specifically those systems for distracted driver action recognition are introduced. Our method aim to extract, from each frame, a region of interest (KOI) that contains body parts performing in-vehicle actions. These regions hold the most important key points after eliminating those common ones that are similar to the key points of the safe driving actions. The proposed approach was evaluated on the distracted driver detection dataset. Experimental results illustrate the performance of the proposed approach.
机译:驾驶员分心是致命的道路交通伤害的主要因素之一。根据美国国家公路交通安全管理局(NHTSA)的数据,2016年,有3450人因分心驾驶而丧生。为了挽救生命,高级驾驶员辅助系统(ADAS)特别是用于分心驾驶员动作识别的系统被引入。 。我们的方法旨在从每个帧中提取一个感兴趣的区域(KOI),该区域包含执行车载动作的身体部位。在消除了那些与安全驾驶行为关键点相似的通用点后,这些区域才是最重要的关键点。在分散注意力的驾驶员检测数据集上对提出的方法进行了评估。实验结果说明了该方法的性能。

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