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Camera-based drowsiness reference for driver state classification under real driving conditions

机译:基于摄像头的睡意参考,用于实际驾驶条件下的驾驶员状态分类

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摘要

Experts assume that accidents caused by drowsiness are significantly under-reported in police crash investigations (1–3%). They estimate that about 24–33% of the severe accidents are related to drowsiness. In order to develop warning systems that detect reduced vigilance based on the driving behavior, a reliable and accurate drowsiness reference is needed. Studies have shown that measures of the driver's eyes are capable to detect drowsiness under simulator or experiment conditions. In this study, the performance of the latest eye tracking based in-vehicle fatigue prediction measures are evaluated. These measures are assessed statistically and by a classification method based on a large dataset of 90 hours of real road drives. The results show that eye-tracking drowsiness detection works well for some drivers as long as the blinks detection works properly. Even with some proposed improvements, however, there are still problems with bad light conditions and for persons wearing glasses. As a summary, the camera based sleepiness measures provide a valuable contribution for a drowsiness reference, but are not reliable enough to be the only reference.
机译:专家认为,睡意引起的事故在警方坠机调查中的报告严重不足(1-3%)。他们估计大约有24–33%的严重事故与嗜睡有关。为了开发基于驾驶行为来检测警惕性降低的警告系统,需要可靠且准确的睡意参考。研究表明,驾驶员的眼睛能够在模拟器或实验条件下检测出睡意。在这项研究中,评估了基于最新眼动追踪的车载疲劳预测措施的性能。对这些措施进行统计评估,并通过基于90小时实际道路行驶的大型数据集的分类方法进行评估。结果表明,只要眨眼检测正常,对某些驾驶员的眼球追踪睡意检测效果很好。但是,即使提出了一些建议的改进,仍然存在照明条件恶劣以及戴眼镜的人的问题。综上所述,基于相机的困倦措施为睡意提供了宝贵的参考,但不够可靠,无法成为唯一的参考。

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