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Facial Expression Recognition in Video Sequence Images by Using Optical Flow

机译:利用光流识别视频序列图像中的面部表情

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In this paper a new method for facial expression recognition is presented. According to this algorithm, an appropriate mask is designed using Gabor filters, and it is convolved with first frame of video sequence images. Then oval part of face is specified and its main components are characterized. By using Lucas Kanade method for optical flow analysis to determine the motion flow vectors on the regions of main parts during frames largest, motion vectors related to sensitive points of face are extracted and classified to the six basic classes such as: normality, happiness, sadness, anger. disgust, and surprise, facial expression are extracted. This method has high accuracy in comparison with other methods and don't need for select landmark manually at first.
机译:本文提出了一种新的面部表情识别方法。根据该算法,使用Gabor滤波器设计适当的遮罩,并将其与视频序列图像的第一帧进行卷积。然后指定了脸部的椭圆形部分并对其主要成分进行了表征。通过使用卢卡斯·卡纳德(Lucas Kanade)方法进行光流分析,确定帧最大时主要部分区域的运动矢量,提取与面部敏感点相关的运动矢量,并将其分类为正常性,幸福性,悲伤性六种基本类别。 ,愤怒。厌恶和惊奇地提取了面部表情。与其他方法相比,该方法具有较高的准确性,并且一开始不需要手动选择地标。

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