An Emotion Recognition System Based on DT-CWT and ANN

About The Book

Facial expressions are the facial changes in response to a person’s internal emotional states intentions or social communications. Facial expression is a vital part of communication and conveys the emotional state of the individual to observers. Anger surprise fear sadness happiness and disgust are the six basic prototypic emotions. In this study emotional face recognition in individuals was investigated. Therefore automatic emotional face recognition is a great motivating and interesting topic which is related to artificial intelligence signal processing and pattern recognition topics. Feature extraction and classification are the two main steps in an emotion recognition system. In the current study the dual tree complex wavelet transform (DT-CWT) and local binary patterns (LBP) are employed as feature extractors with the aim of emotion recognition. In addition the support vector machines (SVM) and artificial neural network (ANN) were used as classification methods. First the facial images were processed with DT-CWT and LBP with the aim of feature extraction. Second Artificial Neural Networks and Support Vector Machines were used for facial expression classification.
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