Driver fatigue discrimination method based on visual features

Shuwei Zhang, Xiao-hua Zhao
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Abstract

Driver fatigue is a major cause of road accidents and kills tens of thousands of people per year. Eye movement and visual features are considered to be affected by driver fatigue. In this paper, a 120min driving simulation test was designed, and the Stanford Sleepiness Scale (SSS) subjective fatigue values and eye characteristics of 16 drivers were collected. Subjective fatigue values were divided into three grades: awake, awake-fatigue and fatigue. From the perspective of visual characteristics, the differences in saccade, blink, and fixation between awake and fatigue states were analyzed. Finally, saccade, blink, fixation, and combination methods to discriminate driver fatigue were compared according to the classification accuracy. The results show that whether drivers are awake or fatigued, their fixation duration is longer than blink duration, and blink duration is longer than saccade duration. Under driver fatigue, saccade duration and fixation duration decreased significantly, while blink duration increased significantly. The classification accuracy of the proposed method in this paper is more than 80%, indicating that visual features have a certain application value in the detection of driver fatigue. The results of this study can provide some suggestions for driver fatigue prevention and control and also help to ensure traffic safety.
基于视觉特征的驾驶员疲劳判别方法
司机疲劳是导致交通事故的主要原因,每年造成数万人死亡。眼球运动和视觉特征被认为受到驾驶员疲劳的影响。本文设计了120min驾驶模拟测试,采集了16名驾驶员的斯坦福嗜睡量表(Stanford Sleepiness Scale, SSS)主观疲劳值和眼特征。主观疲劳值分为清醒、清醒-疲劳和疲劳三个等级。从视觉特征的角度,分析了清醒状态和疲劳状态下扫视、眨眼和注视的差异。最后,比较了扫视法、眨眼法、注视法和组合法对驾驶员疲劳的分类准确率。结果表明,无论是清醒状态还是疲劳状态,驾驶员的注视时间均大于眨眼时间,眨眼时间均大于扫视时间。疲劳状态下,驾驶员的扫视持续时间和注视持续时间显著减少,眨眼持续时间显著增加。本文提出的方法分类准确率在80%以上,说明视觉特征在驾驶员疲劳检测中具有一定的应用价值。本研究结果可为驾驶员疲劳的预防和控制提供建议,并有助于确保交通安全。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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