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Real-time eye state detection system using haar cascade classifier and circular hough transform

机译:Haar级联分类器和Hough变换的实时眼睛状态检测系统

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This paper proposes an eye state detection system using Haar Cascade Classifier and Circular Hough Transform. Our proposed system first detects the face and then the eyes using Haar Cascade Classifiers, which differentiate between opened and closed eyes. Circular Hough Transform (CHT) is used to detect the circular shape of the eye and make sure that the eye is detected correctly by the classifiers. The accuracy of the eye detection is 98.56% on our database which contains 2856 images for opened eye and 2384 images for closed eye. The system works on several stages and is fully automatic. The eye state detection system was tested by several people, and the accuracy of the proposed system is 96.96%.
机译:提出了一种基于Haar Cascade分类器和Circular Hough变换的眼睛状态检测系统。我们提出的系统首先使用Haar级联分类器检测面部,然后检测眼睛,该分类器可以区分睁开的眼睛和闭合的眼睛。圆形霍夫变换(CHT)用于检测眼睛的圆形,并确保分类器正确检测到眼睛。在我们的数据库中,眼睛检测的准确性为98.56%,其中包含2856张针对睁眼的图像和2384张针对闭眼的图像。该系统分多个阶段工作,并且是全自动的。眼睛状态检测系统已经过多人测试,所提系统的准确性为96.96%。

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