Publication | Closed Access
Random forest-based feature selection for emotion recognition
24
Citations
20
References
2015
Year
Unknown Venue
Face DetectionEngineeringFacial Expression RecognitionData SciencePattern RecognitionBiometricsAffective NeuroscienceFeature SelectionAffective ComputingSocial SciencesMultimodal Sentiment AnalysisEmotionRandom ForestEmotion Recognition
The purpose of this paper is to develop a wrapper Random Forest-based feature selection method and to study the performance on emotion recognition of different selected feature sets. A large bank of Gabor filters is used to extract the face appearance. A feature selection is then applied on the wide feature set based on feature importance score computed by Random Forest. A multi-class SVM is finally trained on the chosen features using a widely used database (CK+ database). Results show the impact of the chosen features on the recognition rate and reveal that anger, sadness and the neutral expression recognition is increased by feature selection.
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