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Near-infrared-ray and side-view video based drowsy driver detection system: Whether or not wearing glasses

机译:基于近红外和侧视视频的昏昏欲睡驾驶员检测系统:是否戴眼镜

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In the paper, a near-infrared-ray (NIR) and side-view video based low-complexity drowsy driver detection system is developed for day and night applications. The proposed system detects drowsy conditions effectively whether or not glasses. To reduce the redundant computations, the pre-defined ROI (region of interest) is used at the procedures of face, glasses bridge, eyes, and nose feature detections. By the geometric based facial image processing, the eyes and nose positions are recognized, and the closed eyes and nod situations due to drowsiness are detected effectively. After simulating by self-made driver's video datasets, the average open/closed eyes detection accuracy rates without/with glasses are 95% and 84% in day, and are 89% and 87% in night, and the average drowsy detection accuracy is up to 90%. By software optimizations, the processing speed operates up to 150fps and 20fps in PC and the embedded system respectively for real-time drowsy driver detections.
机译:在本文中,为白天和晚上的应用开发了基于近红外(NIR)和侧视视频的低复杂度困倦驾驶员检测系统。所提出的系统有效地检测昏昏欲睡的状况,无论是否戴眼镜。为了减少冗余计算,在面部,眼镜桥,眼睛和鼻子特征检测的过程中使用了预定义的ROI(感兴趣的区域)。通过基于几何的面部图像处理,可以识别眼睛和鼻子的位置,并有效地检测出由于睡意引起的闭眼和点头情况。通过自制驾驶员的视频数据集进行模拟,白天/不佩戴眼镜的睁/闭眼平均检测准确率分别为白天的95%和84%,夜间的89%和87%,并且平均昏昏欲睡的检测准确度有所提高至90%。通过软件优化,处理速度在PC和嵌入式系统中分别达到150fps和20fps,可实时检测昏昏欲睡的驾驶员。

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