JOURNAL ARTICLE

Action unit classification for facial expression recognition using active learning and SVM

Yao LiYan WanHongjie NiBugao Xu

Year: 2021 Journal:   Multimedia Tools and Applications Vol: 80 (16)Pages: 24287-24301   Publisher: Springer Science+Business Media

Abstract

Abstract Automatic facial expression analysis remains challenging due to its low recognition accuracy and poor robustness. In this study, we utilized active learning and support vector machine (SVM) algorithms to classify facial action units (AU) for human facial expression recognition. Active learning was used to detect the targeted facial expression AUs, while an SVM was utilized to classify different AUs and ultimately map them to their corresponding facial expressions. Active learning reduces the number of non-support vectors in the training sample set and shortens the labeling and training times without affecting the performance of the classifier, thereby reducing the cost of labeling samples and improving the training speed. Experimental results show that the proposed algorithm can effectively suppress correlated noise and achieve higher recognition rates than principal component analysis and a human observer on seven different facial expressions.

Keywords:
Computer science Support vector machine Artificial intelligence Pattern recognition (psychology) Facial expression Classifier (UML) Robustness (evolution) Principal component analysis Facial recognition system Speech recognition Machine learning

Metrics

67
Cited By
10.57
FWCI (Field Weighted Citation Impact)
24
Refs
0.98
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Emotion and Mood Recognition
Social Sciences →  Psychology →  Experimental and Cognitive Psychology
Face and Expression Recognition
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
EEG and Brain-Computer Interfaces
Life Sciences →  Neuroscience →  Cognitive Neuroscience

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