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Facial Emotions Recognition using Gabor Transform and Facial Animation Parameters with Neural Networks

机译:使用Gabor变换和具有神经网络的面部动画参数的面部情感识别

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The paper proposed an automatic facial emotion recognition algorithm which comprises of two main components: feature extraction and expression recognition. The algorithm uses a Gabor filter bank on fiducial points to find the facial expression features. The resulting magnitudes of Gabor transforms, along with 14 chosen FAPs (Facial Animation Parameters), compose the feature space. There are two stages: the training phase and the recognition phase. Firstly, for the present 6 different emotions, the system classifies all training expressions in 6 different classes (one for each emotion) in the training stage. In the recognition phase, it recognizes the emotion by applying the Gabor bank to a face image, then finds the fiducial points, and then feeds it to the trained neural architecture.
机译:本文提出了一种自动面部情感识别算法,包括两个主要组成部分:特征提取和表达识别。该算法在基准点上使用Gabor滤波器组来找到面部表情功能。得到的Gabor变换大小以及14个选择的FAP(面部动画参数),构成特征空间。有两个阶段:训练阶段和识别阶段。首先,对于现在的6种不同的情绪,系统在训练阶段将所有培训表达分类为6种不同的培训表达式(每个情绪)。在识别阶段,它通过将Gabor Bank应用于面部图像来识别情绪,然后找到基准点,然后将其馈送到培训的神经结构。

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