Action unit classification using active appearance models and conditional random fields

被引:20
作者
van der Maaten, Laurens [1 ]
Hendriks, Emile [1 ]
机构
[1] Delft Univ Technol, Pattern Recognit & Bioinformat Lab, NL-2628 CD Delft, Netherlands
基金
欧盟第七框架计划;
关键词
Facial expressions; Facial action coding system; Active appearance models; Conditional random fields; FACIAL EXPRESSION ANALYSIS; TIME HEAD NOD; RECOGNITION;
D O I
10.1007/s10339-011-0419-7
中图分类号
B84 [心理学];
学科分类号
04 ; 0402 ;
摘要
In this paper, we investigate to what extent modern computer vision and machine learning techniques can assist social psychology research by automatically recognizing facial expressions. To this end, we develop a system that automatically recognizes the action units defined in the facial action coding system (FACS). The system uses a sophisticated deformable template, which is known as the active appearance model, to model the appearance of faces. The model is used to identify the location of facial feature points, as well as to extract features from the face that are indicative of the action unit states. The detection of the presence of action units is performed by a time series classification model, the linear-chain conditional random field. We evaluate the performance of our system in experiments on a large data set of videos with posed and natural facial expressions. In the experiments, we compare the action units detected by our approach with annotations made by human FACS annotators. Our results show that the agreement between the system and human FACS annotators is higher than 90% and underlines the potential of modern computer vision and machine learning techniques to social psychology research. We conclude with some suggestions on how systems like ours can play an important role in research on social signals.
引用
收藏
页码:507 / 518
页数:12
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