实时面部表情识别与AdaBoost

Yubo Wang, H. Ai, Bo Wu, Chang Huang
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引用次数: 141

摘要

本文提出了一种新的面部表情识别方法。通过增强Haar特征的弱分类器学习表情分类器,从人脸中提取面部表情。表情识别系统由人脸检测、人脸特征地标提取和面部表情识别三个模块组成。该系统可以实时自动识别七种表情,包括愤怒、厌恶、恐惧、快乐、中性、悲伤和惊讶。实验结果显示了它在人机交互中的潜在应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Real time facial expression recognition with AdaBoost
In this paper, we propose a novel method for facial expression recognition. The facial expression is extracted from human faces by an expression classifier that is learned from boosting Haar feature based look-up-table type weak classifiers. The expression recognition system consists of three modules, face detection, facial feature landmark extraction and facial expression recognition. The implemented system can automatically recognize seven expressions in real time that include anger, disgust, fear, happiness, neutral, sadness and surprise. Experimental results are reported to show its potential applications in human computer interaction.
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