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Automatic Facial Expression Recognition by Facial Parts Location with Boosted-LBP

机译:通过Boosted-LBP通过面部部位位置自动识别面部表情

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This paper proposes an automatic facial expression recognition system, which uses new methods in both face detection and feature extraction. In this system, considering that facial expressions are related to a small set of muscles and limited ranges of motions, the facial expressions are recognized by these changes in video sequences. First, the differences between neutral and emotional states are detected. Faces can be automatically located from changing facial organs. Then, LBP features are applied and AdaBoost is used to find the most important features for each expression on essential facial parts. At last, SVM with polynomial kernel is used to classify expressions. The method is evaluated on JAFFE and MMI databases. The performances are better than other automatic or manual annotated systems.
机译:本文提出了一种自动面部表情识别系统,该系统在面部检测和特征提取中都采用了新方法。在该系统中,考虑到面部表情与一小组肌肉和有限的运动范围有关,因此可以通过视频序列中的这些变化来识别面部表情。首先,检测中性和情绪状态之间的差异。可以从不断变化的面部器官自动定位面部。然后,应用LBP特征,并使用AdaBoost为基本面部部位的每个表情找到最重要的特征。最后,使用具有多项式核的SVM对表达式进行分类。该方法在JAFFE和MMI数据库上进行评估。性能优于其他自动或手动注释系统。

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