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An Efficient Head Pose Determination and its Application to Face Recognition Using Multi-pose Face DB and SVM

机译:一种高效的头部姿态确定及其在使用多姿态DB和SVM面部识别的应用

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This paper proposes an efficient head pose determination method and its application to face recognition on a multi-pose face DB in order to solve the pose variation-related problem. The first step is to detect a facial region using Adaboost. Next, after undergoing preprocessing on the detected face, a mask covers it. At the detected facial region, the pose is determined by relations of the position of centroid points on the eyes and lip regions, which are detected by using the ellipse fitting method. Finally, we select Pose DB and SVM Classification that correspond to the point determined in input facial images. Then, we perform face recognition based on the learning data of the subject present in SVM Classification. It was found that recognition performance has been improved through the comparative experiment of the proposed method and the multi-view face recognition of the template matching algorithm using multi-view low-capacity DB.
机译:本文提出了一种高效的头部姿态确定方法及其在多姿态DB上识别的应用,以解决姿态变化相关的问题。 第一步是使用Adaboost检测面部区域。 接下来,在被检测到的面部进行预处理后,掩模覆盖它。 在检测到的面部区域,通过使用椭圆拟合方法检测的眼睛和唇部区域对眼睛和唇部区域的位置的关系来确定姿势。 最后,我们选择对应于输入面部图像中确定的点的姿势DB和SVM分类。 然后,我们基于SVM分类中存在的主题的学习数据进行人脸识别。 发现通过使用多视图低容量DB的模板匹配算法的比较实验,通过对比较实验改进了识别性能。

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