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Real-time eye tracking for the assessment of driver fatigue

机译:实时眼动追踪评估驾驶员疲劳程度

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摘要

Eye-tracking is an important approach to collect evidence regarding some participants’ driving fatigue. In this contribution, the authors present a non-intrusive system for evaluating driver fatigue by tracking eye movement behaviours. A real-time eye-tracker was used to monitor participants’ eye state for collecting eye-movement data. These data are useful to get insights into assessing participants’ fatigue state during monotonous driving. Ten healthy subjects performed continuous simulated driving for 1–2 h with eye state monitoring on a driving simulator in this study, and these measured features of the fixation time and the pupil area were recorded via using eye movement tracking device. For achieving a good cost-performance ratio and fast computation time, the fuzzy K-nearest neighbour was employed to evaluate and analyse the influence of different participants on the variations in the fixation duration and pupil area of drivers. The findings of this study indicated that there are significant differences in domain value distribution of the pupil area under the condition with normal and fatigue driving state. Result also suggests that the recognition accuracy by jackknife validation reaches to about 89% in average, implying that show a significant potential of real-time applicability of the proposed approach and is capable of detecting driver fatigue.
机译:眼动追踪是一种收集有关某些参与者驾驶疲劳的证据的重要方法。在这项贡献中,作者提出了一种非侵入式系统,用于通过跟踪眼睛的运动行为来评估驾驶员的疲劳程度。实时眼动仪用于监视参与者的眼神状态,以收集眼动数据。这些数据有助于洞察评估单调驾驶过程中参与者的疲劳状态。在这项研究中,十名健康受试者在驾驶模拟器上通过眼睛状态监测进行了连续模拟驾驶1-2小时,并通过使用眼动跟踪设备记录了这些固定时间和瞳孔面积的测量特征。为了获得良好的性价比,并使用快速的K近邻法来评估和分析不同参与者对驾驶员注视持续时间和瞳孔面积变化的影响。这项研究的结果表明,在正常和疲劳驾驶状态下,瞳孔区域的域值分布存在显着差异。结果还表明,通过折刀验证的识别准确率平均达到了约89%,这表明该方法具有很大的实时适用性,并且能够检测驾驶员疲劳。

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