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Τίτλος: Improving the robustness of subspace learning techniques for facial expression recognition
Συγγραφείς: Bolis, Dimitris 
Tefas, Anastasios 
Pitas, Ioannis K. 
Maronidis, Anastasios 
metadata.dc.contributor.other: Μπόλης, Δημήτρης
Τέφας, Αναστάσιος
Πίτας, Ιωάννης Κ.
Μαρωνίδης, Αναστάσιος
Λέξεις-κλειδιά: Facial expression;Neural networks;Experiments;Human face recognition (Computer science)
Ημερομηνία Έκδοσης: 2010
Πηγή: 20th International Conference on Artificial Neural Networks, 2010, Thessaloniki, Greece
Περίληψη: In this paper, the robustness of appearance-based, subspace learning techniques for facial expression recognition in geometrical transformations is explored. A plethora of facial expression recognition algorithms is presented and tested using three well-known facial expression databases. Although, it is common-knowledge that appearance based methods are sensitive to image registration errors, there is no systematic experiment reported in the literature and the problem is considered, a priori, solved. However, when it comes to automatic real-world applications, inaccuracies are expected, and a systematic preprocessing is needed. After a series of experiments we observed a strong correlation between the performance and the bounding box position. The mere investigation of the bounding box’s optimal characteristics is insufficient, due to the inherent constraints a real-world application imposes, and an alternative approach is demanded. Based on systematic experiments, the database enrichment with translated, scaled and rotated images is proposed for confronting the low robustness of subspace techniques for facial expression recognition.
DOI: 10.1007/978-3-642-15819-3_63
Rights: © 2010 Springer-Verlag Berlin Heidelberg.
Type: Conference Papers
Affiliation: Aristotle University of Thessaloniki 
Εμφανίζεται στις συλλογές:Δημοσιεύσεις σε συνέδρια /Conference papers or poster or presentation

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