Open/Closed Eye Analysis for Drowsiness Detection

P. Tabrizi, R. Zoroofi
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引用次数: 67

Abstract

Drowsiness detection is vital in preventing traffic accidents. Eye state analysis - detecting whether the eye is open or closed - is critical step for drowsiness detection. In this paper, we propose an easy algorithm for pupil center and iris boundary localization and a new algorithm for eye state analysis, which we incorporate into a four step system for drowsiness detection: face detection, eye detection, eye state analysis, and drowsy decision. This new system requires no training data at any step or special cameras. Our eye detection algorithm uses Eye Map, thus achieving excellent pupil center and iris boundary localization results on the IMM database. Our novel eye state analysis algorithm detects eye state using the saturation (S) channel of the HSV color space. We analyze our eye state analysis algorithm using five video sequences and show superior results compared to the common technique based on distance between eyelids.
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睡意检测的睁眼/闭眼分析
睡意检测对防止交通事故至关重要。眼睛状态分析——检测眼睛是开着还是闭着——是检测睡意的关键步骤。本文提出了一种简单的瞳孔中心和虹膜边界定位算法和一种新的眼状态分析算法,并将其整合到一个四步系统中,即人脸检测、眼睛检测、眼状态分析和昏昏欲睡决策。这个新系统在任何步骤都不需要训练数据,也不需要特殊的摄像头。我们的眼睛检测算法使用eye Map,在IMM数据库上获得了很好的瞳孔中心和虹膜边界定位结果。我们的新眼睛状态分析算法利用HSV色彩空间的饱和度(S)通道检测眼睛状态。我们使用五个视频序列来分析我们的眼状态分析算法,与基于眼睑之间距离的常用技术相比,结果更好。
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