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Facial action recognition for facial expression analysis from static face images

机译:从静态人脸图像进行面部表情分析的面部动作识别

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Automatic recognition of facial gestures (i.e., facial muscle activity) is rapidly becoming an area of intense interest in the research field of machine vision. In this paper, we present an automated system that we developed to recognize facial gestures in static, frontal- and/or profile-view color face images. A multidetector approach to facial feature localization is utilized to spatially sample the profile contour and the contours of the facial components such as the eyes and the mouth. From the extracted contours of the facial features, we extract ten profile-contour fiducial points and 19 fiducial points of the contours of the facial components. Based on these, 32 individual facial muscle actions (AUs) occurring alone or in combination are recognized using rule-based reasoning. With each scored AU, the utilized algorithm associates a factor denoting the certainty with which the pertinent AU has been scored. A recognition rate of 86% is achieved.
机译:面部姿势(即面部肌肉活动)的自动识别正在迅速成为机器视觉研究领域中的一个令人关注的领域。在本文中,我们介绍了一个自动系统,该系统经过开发,可以识别静态,正面和/或纵断面视图彩色面部图像中的面部手势。用于面部特征定位的多检测器方法用于对轮廓轮廓和面部组件(例如眼睛和嘴巴)的轮廓进行空间采样。从提取的面部特征轮廓中,我们提取出十个轮廓轮廓基准点和19个面部轮廓轮廓基准点。基于这些,可以使用基于规则的推理来识别32个单独或组合出现的面部肌肉动作(AU)。对于每个评分的AU,所使用的算法将一个因子关联,该因子表示对相关AU评分的确定性。识别率达到86%。

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