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Towards Detection of Bus Driver Fatigue Based on Robust Visual Analysis of Eye State

机译:基于眼睛状态鲁棒性视觉分析的公交驾驶员疲劳检测

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摘要

Driver's fatigue is one of the major causes of traffic accidents, particularly for drivers of large vehicles (such as buses and heavy trucks) due to prolonged driving periods and boredom in working conditions. In this paper, we propose a vision-based fatigue detection system for bus driver monitoring, which is easy and flexible for deployment in buses and large vehicles. The system consists of modules of head-shoulder detection, face detection, eye detection, eye openness estimation, fusion, drowsiness measure percentage of eyelid closure (PERCLOS) estimation, and fatigue level classification. The core innovative techniques are as follows: 1) an approach to estimate the continuous level of eye openness based on spectral regression; and 2) a fusion algorithm to estimate the eye state based on adaptive integration on the multimodel detections of both eyes. A robust measure of PERCLOS on the continuous level of eye openness is defined, and the driver states are classified on it. In experiments, systematic evaluations and analysis of proposed algorithms, as well as comparison with ground truth on PERCLOS measurements, are performed. The experimental results show the advantages of the system on accuracy and robustness for the challenging situations when a camera of an oblique viewing angle to the driver's face is used for driving state monitoring.
机译:驾驶员的疲劳是交通事故的主要原因之一,特别是对于大型车辆(例如公共汽车和重型卡车)的驾驶员而言,由于驾驶时间长且工作环境无聊,因此尤其容易引起疲劳。在本文中,我们提出了一种基于视觉的疲劳检测系统,用于公交车驾驶员监控,它易于灵活地部署在公交车和大型车辆中。该系统由头肩检测,面部检测,眼睛检测,睁眼估计,融合,睡意测量眼睑闭合百分比(PERCLOS)估计和疲劳等级分类等模块组成。核心创新技术如下:1)一种基于光谱回归估计连续睁眼水平的方法; 2)一种融合算法,基于对两只眼睛的多模型检测的自适应积分,估计眼睛状态。定义了一种在连续睁眼水平上有效的PERCLOS度量,并在其上分类了驾驶员状态。在实验中,对提出的算法进行了系统评估和分析,并与PERCLOS测量中的地面真实情况进行了比较。实验结果表明,当使用与驾驶员面部倾斜视角的摄像头进行行驶状态监视时,该系统在具有挑战性的情况下在准确性和鲁棒性方面具有优势。

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