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Facial Expression Recognition using Facial Landmarks: A Novel Approach

机译:面部表情识别使用面部地标:一种新方法

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摘要

The universally common mode of interaction is the human emotions. Thus, there are several advantages of automated recognition of human facial expressions. The primary objective of the proposed framework in this paper, is to classify a person’s facial expression into anger, contempt, disgust, fear, happiness, sadness and surprise. Firstly, CLAHE is performed on the image and the faces are identified using a histogram of oriented gradients. Then, using a model trained with the iBUG 300-W dataset the facial landmarks are predicted. Using the proposed method with the normalized landmarks, a feature vector is calculated. With this calculated feature vector, the emotions can be recognized using a Support Vector Classifier. The Support Vector Classifier was trained and tested for system accuracy using the famous Extended Cohn-Kanade database.
机译:普遍的互动模式是人类的情绪。因此,人类面部表情自动识别有几个优点。本文拟议框架的主要目标是将一个人的面部表达分类为愤怒,蔑视,厌恶,恐惧,幸福,悲伤和惊喜。首先,在图像上执行CLAHE,并且使用面向梯度的直方图识别面部。然后,使用与IBUG 300-W DataSet训练的模型预测了面部地标。使用所提出的方法具有归一化的地标,计算特征向量。利用该计算出的特征向量,可以使用支持向量分类器识别情绪。使用着名的扩展COHN-KANADE数据库培训并测试支持向量分类器和测试系统精度。

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