Real-time facial expression recognition using smoothed deep neural network ensemble

Facial emotion recognition (FER) has been extensively researched over the past two decades due to its direct impact in the computer vision and affective robotics fields. However, the available datasets to train these models include often miss-labelled data due to the labellers bias that drives the m...

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Published inIntegrated computer-aided engineering Vol. 28; no. 1; pp. 97 - 111
Main Authors Benamara, Nadir Kamel, Val-Calvo, Mikel, Álvarez-Sánchez, Jose Ramón, Díaz-Morcillo, Alejandro, Ferrández-Vicente, Jose Manuel, Fernández-Jover, Eduardo, Stambouli, Tarik Boudghene
Format Journal Article
LanguageEnglish
Published London, England SAGE Publications 01.01.2021
Sage Publications Ltd
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ISSN1069-2509
1875-8835
DOI10.3233/ICA-200643

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Abstract Facial emotion recognition (FER) has been extensively researched over the past two decades due to its direct impact in the computer vision and affective robotics fields. However, the available datasets to train these models include often miss-labelled data due to the labellers bias that drives the model to learn incorrect features. In this paper, a facial emotion recognition system is proposed, addressing automatic face detection and facial expression recognition separately, the latter is performed by a set of only four deep convolutional neural network respect to an ensembling approach, while a label smoothing technique is applied to deal with the miss-labelled training data. The proposed system takes only 13.48 ms using a dedicated graphics processing unit (GPU) and 141.97 ms using a CPU to recognize facial emotions and reaches the current state-of-the-art performances regarding the challenging databases, FER2013, SFEW 2.0, and ExpW, giving recognition accuracies of 72.72%, 51.97%, and 71.82% respectively.
AbstractList Facial emotion recognition (FER) has been extensively researched over the past two decades due to its direct impact in the computer vision and affective robotics fields. However, the available datasets to train these models include often miss-labelled data due to the labellers bias that drives the model to learn incorrect features. In this paper, a facial emotion recognition system is proposed, addressing automatic face detection and facial expression recognition separately, the latter is performed by a set of only four deep convolutional neural network respect to an ensembling approach, while a label smoothing technique is applied to deal with the miss-labelled training data. The proposed system takes only 13.48 ms using a dedicated graphics processing unit (GPU) and 141.97 ms using a CPU to recognize facial emotions and reaches the current state-of-the-art performances regarding the challenging databases, FER2013, SFEW 2.0, and ExpW, giving recognition accuracies of 72.72%, 51.97%, and 71.82% respectively.
Author Benamara, Nadir Kamel
Álvarez-Sánchez, Jose Ramón
Ferrández-Vicente, Jose Manuel
Fernández-Jover, Eduardo
Stambouli, Tarik Boudghene
Díaz-Morcillo, Alejandro
Val-Calvo, Mikel
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label smoothing
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human-machine interaction
emotion recognition
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Snippet Facial emotion recognition (FER) has been extensively researched over the past two decades due to its direct impact in the computer vision and affective...
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SubjectTerms Artificial neural networks
Computer vision
Emotion recognition
Emotions
Face recognition
Graphics processing units
Neural networks
Robotics
Title Real-time facial expression recognition using smoothed deep neural network ensemble
URI https://journals.sagepub.com/doi/full/10.3233/ICA-200643
https://www.proquest.com/docview/2474394603
Volume 28
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