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Improve the Recognition Rate of Facial Expressions by Normalized Facial Features of Different Personal Face and Photo Sizes

机译:通过不同个人脸部和照片尺寸的标准化面部特征提高面部表达的识别率

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With the advancement in camera techniques, the recognition of human facial expressions has become an important research topic in recent years. Most of the face recognition systems are trying to seek facial features such as eyes and mouth automatically. But the results are inefficient because of the wrong angle and size of a face compared with facial database. In this paper, we propose a real time facial expression recognition system which possesses two functions. First, the system extracts facial features from human face and rotates to the right angle if the face did not pose the right angle. Second, to solve the different face sizes caused by near-far distance to the camera, the system employs a normalization method based on the fixed length of some features on user faces. From experimental results, the system can identify the facial expressions with a high precision rate.
机译:随着相机技术的进步,近年来对人类面部表情的认可已成为一个重要的研究课题。大多数面部识别系统正试图自动寻求诸如眼睛和嘴巴的面部特征。但是由于与面部数据库相比,由于面部的角度和大小的错误角度和大小的结果效率低。在本文中,我们提出了一个具有两个功能的实时面部表情识别系统。首先,系统从人脸提取面部特征,如果面部没有姿势,则旋转到直角。其次,为了解决近远距离距离相机引起的不同面部尺寸,系统采用了基于用户面上的某些特征的固定长度的归一化方法。从实验结果来看,该系统可以以高精度率识别面部表情。

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