首页> 外文期刊>International Journal of Optomechatronics >REAL-TIME TEMPLATE BASED FACE AND IRIS DETECTION ON ROTATED FACES
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REAL-TIME TEMPLATE BASED FACE AND IRIS DETECTION ON ROTATED FACES

机译:旋转面上基于实时模板的人脸和虹膜检测

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Real-time iris and face detection on video sequences is important in applications such as study of the eye function, drowsiness detection, man-machine interfaces, face recognition security and multimedia retrieval. In this work, we present a real-time template based method for iris detection in faces with wide coronal (-40°, +40°) and transversal (-45°, +45°) axis rotations. This method is based on anthropometric templates that were constructed off-line for face coronal and transversal rotation, using face features such as elliptical shape, location of the eyebrows, nose and lips. A line integral is computed using these templates over the fine directional image to find the actual face location, face size and rotation angle. This information provides a region to search for the eyes and the iris boundary is detected Results computed on five video sequences including coronal and transversal rotations with over 1,700 frames show correct face detection rate of 98.5% and iris detection rate of 94.4%. The method was compared with a "weighting mask method" on two video sequences showing an improved performance. The method was also compared for eye detection to a method using combined binary edge and intensity information in two subsets of the AR face database (63 and 564 images). Different disparity errors were considered and for the smallest error, a 100% correct detection was reached in the AR-63 subset and 99.8% was obtained in the AR-564 subset.
机译:视频序列上的实时虹膜和面部检测在诸如研究眼功能,睡意检测,人机界面,面部识别安全性和多媒体检索等应用中很重要。在这项工作中,我们提出了一种基于实时模板的方法,用于在宽冠状(-40°,+ 40°)和横向(-45°,+ 45°)轴旋转的面部进行虹膜检测。此方法基于人体测量模板,这些模板是离线构建的,用于面部冠状和横向旋转,并使用诸如椭圆形状,眉毛,鼻子和嘴唇的位置等面部特征。使用这些模板在精细方向图像上计算线积分,以找到实际的面部位置,面部大小和旋转角度。此信息提供了一个搜索眼睛和虹膜边界的区域,并可以对五个视频序列(包括日冕和横向旋转)进行超过1700帧的计算,结果显示正确的面部检测率为98.5%,虹膜检测率为94.4%。该方法在两个视频序列上与“加权掩码方法”进行了比较,显示了改进的性能。还将该方法用于眼睛检测的方法与在AR人脸数据库的两个子集中(63和564张图像)中使用组合的二进制边缘和强度信息的方法进行了比较。考虑了不同的视差误差,对于最小的误差,AR-63子集中的检出率达到100%,AR-564子集中的检出率达到99.8%。

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