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Driver Distraction Detection and Identity Recognition in Real-Time

机译:驾驶员分心实时检测和身份识别

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Drivers attending to primary driving tasks show specific eye and head movement behaviours, while the distracted drive generally covers the states including drivers' eyes off the road and long-term eye closure. This paper presents a distraction detection system by using the strategy of ``attention budget''. The states of eyes off the road and face with closed eyes are used to lessen the ``attention budget'' while the reversed conditions gain it. Drivers' gaze estimation is derived from the head motion, and the stage classifiers working with haar-like features are used to detect head movements and eye states. With regard to the factors of drivers' personal characteristics in distraction detection, the recognition of drivers is implemented by extraction and matching of scale invariant feature transform features in detected frontal face. The results of experiments validate the effectiveness and robustness of the system.
机译:参加主要驾驶任务的驾驶员表现出特定的眼睛和头部运动行为,而分心的驾驶通常涵盖各种状态,包括驾驶员不在路上的眼睛和长期闭眼的状态。本文提出了一种基于``注意力预算''策略的注意力分散检测系统。道路上的眼睛状态和闭着眼睛的脸的状态用于减少``注意力预算'',而相反的条件则可以增加注意力预算。驾驶员的视线估计值是从头部运动得出的,具有类似哈尔特征的舞台分类器用于检测头部运动和眼睛状态。关于驾驶员注意力分散特征的影响因素,驾驶员的识别是通过提取和匹配所检测到的正面面部的尺度不变特征变换特征来实现的。实验结果验证了该系统的有效性和鲁棒性。

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