Eyes Do Not Lie: Spontaneous Versus Posed Smiles

Open Access
Authors
Publication date 2010
Book title MM '10: proceedings of the ACM Multimedia 2010 International Conference: October 25-29, 2010, Firenze, Italy
ISBN
  • 9781605589336
Event 2010 ACM International Conference on Multimedia
Pages (from-to) 703-706
Publisher New York, NY: Association for Computing Machinery
Organisations
  • Faculty of Science (FNWI) - Informatics Institute (IVI)
Abstract
Automatic detection of spontaneous versus posed facial expressions received a lot of attention in recent years. However, almost all published work in this area use complex facial features or multiple modalities, such as head pose and body movements with facial features. Besides, the results of these studies are not given on public databases. In this paper, we focus on eyelid movements to classify spontaneous versus posed smiles and propose distance-based and angular features for eyelid movements. We assess the reliability of these features with continuous HMM, k-NN and na�ıve Bayes classifiers on two different public datasets. Experimentation shows that our system provides classification rates up to 91 per cent for posed smiles and up to 80 per cent for spontaneous smiles by using only eyelid movements. We additionally compare the discrimination power of movement features from different facial regions for the same task.
Document type Conference contribution
Language English
Published at https://doi.org/10.1145/1873951.1874056
Downloads
DibekliogluICM2010 (Accepted author manuscript)
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