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Τίτλος: Improving subspace learning for facial expression recognition using person dependent and geometrically enriched training sets
Συγγραφείς: Bolis, Dimitris 
Tefas, Anastasios 
Pitas, Ioannis K. 
Maronidis, Anastasios 
Major Field of Science: Humanities
Field Category: Arts;Other Humanities
Λέξεις-κλειδιά: Facial expression recognition;Appearance based techniques;Subspace learning methods
Ημερομηνία Έκδοσης: Οκτ-2011
Πηγή: Neural Networks, 2011, vol. 24, no. 8, pp. 814–823
Volume: 24
Issue: 8
Start page: 814
End page: 823
Περιοδικό: Neural Networks 
Περίληψη: In this paper, the robustness of appearance-based subspace learning techniques in geometrical transformations of the images is explored. A number of such techniques are presented and tested using four facial expression databases. A strong correlation between the recognition accuracy and the image registration error has been observed. Although it is common-knowledge that appearance-based methods are sensitive to image registration errors, there is no systematic experiment reported in the literature. As a result of these experiments, the training set enrichment with translated, scaled and rotated images is proposed for confronting the low robustness of these techniques in facial expression recognition. Moreover, person dependent training is proven to be much more accurate for facial expression recognition than generic learning.
URI: https://hdl.handle.net/20.500.14279/1775
ISSN: 18792782
DOI: 10.1016/j.neunet.2011.05.015
Rights: © Elsevier
Type: Article
Affiliation: Aristotle University of Thessaloniki 
Affiliation: Aristotle University of Thessaloniki 
Publication Type: Peer Reviewed
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