DocumentCode :
19429
Title :
Automatic Analysis of Facial Affect: A Survey of Registration, Representation, and Recognition
Author :
Sariyanidi, Evangelos ; Gunes, Hatice ; Cavallaro, Andrea
Author_Institution :
Centre for Intell. Sensing, Queen Mary Univ. of London, London, UK
Volume :
37
Issue :
6
fYear :
2015
fDate :
June 1 2015
Firstpage :
1113
Lastpage :
1133
Abstract :
Automatic affect analysis has attracted great interest in various contexts including the recognition of action units and basic or non-basic emotions. In spite of major efforts, there are several open questions on what the important cues to interpret facial expressions are and how to encode them. In this paper, we review the progress across a range of affect recognition applications to shed light on these fundamental questions. We analyse the state-of-the-art solutions by decomposing their pipelines into fundamental components, namely face registration, representation, dimensionality reduction and recognition. We discuss the role of these components and highlight the models and new trends that are followed in their design. Moreover, we provide a comprehensive analysis of facial representations by uncovering their advantages and limitations; we elaborate on the type of information they encode and discuss how they deal with the key challenges of illumination variations, registration errors, head-pose variations, occlusions, and identity bias. This survey allows us to identify open issues and to define future directions for designing real-world affect recognition systems.
Keywords :
emotion recognition; face recognition; image registration; image representation; automatic facial affect analysis; dimensionality reduction; emotion recognition; face recognition; face registration; face representation; Emotion recognition; Face; Face recognition; Histograms; Lighting; Shape; Training; Affect Sensing and Analysis; Affect sensing and analysis; Facial Expressions; Facial Representations; Registration; Survey; facial expressions; facial representations; registration; survey;
fLanguage :
English
Journal_Title :
Pattern Analysis and Machine Intelligence, IEEE Transactions on
Publisher :
ieee
ISSN :
0162-8828
Type :
jour
DOI :
10.1109/TPAMI.2014.2366127
Filename :
6940284
Link To Document :
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