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Driver's Fatigue and Drowsiness Detection to Reduce Traffic Accidents on Road

机译:司机的疲劳和嗜睡检测,以减少道路上的交通事故

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This paper proposes a robust and nonintrusive system for monitoring driver's fatigue and drowsiness in real time. The proposed scheme begins by extracting the face from the video frame using the Support Vector Machine (SVM) face detector. Then a new approach for eye and mouth state analysis -based on Circular Hough Transform (CHT)- is applied on eyes and mouth extracted regions. Our drowsiness analysis method aims to detect micro-sleep periods by identifying the iris using a novel method to characterize driver's eye state. Fatigue analysis method based on yawning detection is also very important to prevent the driver before drowsiness. In order to identify yawning, we detect wide open mouth using the same proposed method of eye state analysis. The system was tested with different sequences recorded in various con-ditions and with different subjects. Some experimental results about the performance of the system are presented.
机译:本文提出了一种强大而非僵硬的系统,可以实时监测驾驶员的疲劳和嗜睡。所提出的方案通过使用支持向量机(SVM)面检测器从视频帧中提取面部开始。然后在圆形霍夫转换(CHT)上进行了一种新的眼睛和口腔状态分析方法 - 施加在眼睛和嘴里提取的区域。我们的嗜睡分析方法旨在通过使用新方法来表征驾驶员的眼睛状态来识别虹膜来检测微睡眠时间。基于Rawning检测的疲劳分析方法也非常重要,不能在嗜睡之前防止驾驶员。为了识别打呵欠,我们使用相同的眼部分析方法检测宽开口。用不同的序列进行测试,以各种Con-initions和不同的受试者进行测试。提出了关于系统性能的一些实验结果。

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