Facial expression analysis using a sparse representation based space model

Weifeng Liu, Caifeng Song, Yanjiang Wang
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引用次数: 3

Abstract

With the development of information technologies, facial expression analysis becomes more and more essential to human computer interaction (HCI). A natural way to analysis facial expression is derived from the study on human emotion which is regarded as the intrinsic origin of facial expression. Another issue for facial expression analysis is to extract substaintial facial features that correspond with visual perception system. Based on these observations, we present a sparse representation based space model for facial expression analysis which applies Gabor filters to extract facial features. The sparse representation based facial expression space model is induced from human emotion space and then can describe mixture facial expressions which are usual in daily life. Experiments on JAFFE database demonstrate the validity of the proposed facial expression space model.
基于空间稀疏表示模型的面部表情分析
随着信息技术的发展,面部表情分析在人机交互中变得越来越重要。对人类情感的研究为分析面部表情提供了一种自然的方法,认为人类情感是面部表情的内在根源。面部表情分析的另一个问题是提取与视觉感知系统相对应的实质性面部特征。基于这些观察,我们提出了一种基于稀疏表示的面部表情分析空间模型,该模型应用Gabor滤波器提取面部特征。基于稀疏表示的面部表情空间模型是从人的情感空间中导出的,可以描述日常生活中常见的混合面部表情。在JAFFE数据库上的实验验证了所提出的面部表情空间模型的有效性。
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