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Facial Expression Recognition Using Facial Landmarks and Random Forest Classifier

机译:使用面部地标和随机森林分类器的面部表情识别

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Human emotions are the universally common mode of interaction. Automated human facial expression identification has its own advantages. In this paper, the author has proposed and developed a methodology to identify facial emotions using facial landmarks and random forest classifier. Firstly, faces are identified in each image using a histogram of oriented gradients with a linear classifier, image pyramid, and sliding window detection scheme. Then facial landmarks are identified using a model trained with the iBUG 300-W dataset. A feature vector is calculated using a proposed method which uses identified facial landmarks and it is normalized using a proposed method in order to remove facial size variations. The same feature vector is calculated for the neutral pose and vector difference is used to identify emotions using random forest classifier. Famous Extended Cohn-Kanade database has been used to train random forest and to test the accuracy of the system.
机译:人类的情感是普遍普遍的互动方式。自动化的人脸表情识别具有其自身的优势。在本文中,作者提出并开发了一种使用面部标志和随机森林分类器来识别面部情绪的方法。首先,使用带有线性分类器,图像金字塔和滑动窗口检测方案的定向梯度直方图在每个图像中识别人脸。然后,使用经过iBUG 300-W数据集训练的模型来识别面部标志。使用提出的方法来计算特征向量,该方法使用识别出的面部界标,并且使用提出的方法对其进行归一化以去除面部尺寸变化。针对中性姿势计算相同的特征向量,并使用随机森林分类器将向量差用于识别情绪。著名的扩展Cohn-Kanade数据库已用于训练随机森林并测试系统的准确性。

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