基于Candide-3人脸模型的动态面部表情特征提取与分类

Dong Li, Xinzhu Wang, Yantao Tian
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引用次数: 0

摘要

人脸识别涉及人工智能、模式识别、图像处理、心理学等多个领域。它是人类互动领域的一个重要研究课题。随着计算机运算速度的提高,基于动态图像序列的面部表情识别越来越受到人们的关注。基于动态图像序列的面部表情识别与基于静态图像序列的面部表情识别是有区别的。动态特征中包含了更多的动态和静态特征信息。表情特征提取是通过静态信息和多幅图像的采集来描述表情的变化趋势。本文提出了一种基于Candide-3人脸模型参数的动态特征提取算法,用于提取匹配人脸模型的动态特征。
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Dynamic Facial Expression Feature Extraction and Classification Based on Candide-3 Face Model
Face recognition involves artificial intelligence, pattern recognition, image processing, psychology and other fields. It is a critical research topic in human interaction. The facial expression recognition based on dynamic image sequence is becoming more attractive with the improvement of the computer speed. It is different between the facial expression recognition based on the dynamic image sequence and the facial expression recognition based on static image. More dynamic and static feature information is involved in the dynamic features. Expression feature extraction describes by static information and the changed trend of expression due to the collection of multiple images. This paper provides the dynamic feature extraction algorithm based on Candide-3 face model parameters to extract the dynamic feature with matching facial model.
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