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Driver fatigue monitoring system based on eye state analysis

机译:基于眼睛状态分析的驾驶员疲劳监测系统

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Driver fatigue has been one of the major causes of accidents all over the world. This paper presents a real-time fatigue monitoring system which exploits driver's eye to detect fatigue. The approach uses Viola-Jones Face Cascade of classifiers for the detection of Driver's Face. The eye region is estimated heuristically with respect to the width and height of the detected face. The run length of the distribution of the pixel intensities quantised into bins are used as features and are extracted from the eye region on a frame by frame basis. The feature is well able to discriminate the different states of the driver's eye like open, nearly closed and closed. A Support Vector Machine (SVM) is finally integrated within the system to classify the facial appearance as either fatigued or otherwise. The overall system achieved an accuracy of 93.5%.
机译:驾驶员疲劳一直是全世界发生事故的主要原因之一。本文提出了一种实时疲劳监测系统,该系统利用驾驶员的眼睛检测疲劳。该方法使用分类器的Viola-Jones Face Cascade来检测驾驶员的面部。相对于检测到的脸部的宽度和高度,通过试探法估计眼睛区域。量化为像素的像素强度分布的游程长度用作特征,并逐帧从眼睛区域中提取出来。该功能可以很好地区分驾驶员眼睛的不同状态,例如张开,近乎闭合和闭合。最后,将支持向量机(SVM)集成到系统中,以将面部外观归类为疲劳或其他形式。整个系统的准确度达到93.5%。

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