Emotion Detection Based on EEG Signal

One of the foremost critical element between interacting individuals is emotion. Today, it is vital for the computers to recognize the emotion of user that interacts with the computer in Human Computer Interaction (HCI) frameworks to make the devices more successful and comprehensive for everyone...

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Main Author: Mohamad Nasaruddin, Noradila
Format: Final Year Project
Language: English
Institution: Universiti Teknologi Petronas
Record Id / ISBN-0: utp-utpedia.23038 /
Published: Universiti Teknologi PETRONAS 2021
Subjects:
Online Access: http://utpedia.utp.edu.my/23038/1/20_UTP21-2_EE20.pdf
http://utpedia.utp.edu.my/23038/
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Summary: One of the foremost critical element between interacting individuals is emotion. Today, it is vital for the computers to recognize the emotion of user that interacts with the computer in Human Computer Interaction (HCI) frameworks to make the devices more successful and comprehensive for everyone. In our body, signal from our brain, also known as electroencephalogram (EEG) signal is the main source that generates emotion. Lately, emotion detection through EEG signals had pulled in numerous researchers and numerous algorithm were discovered. Various kinds of features extraction were investigated and different types of classification method were explored. However, emotion detection based on EEG signal is considered as a challenging research topic due to the non-stationary behaviour of the signal. Thus, this project aimed to study the emotion detection through EEG signal and proposed the right algorithm to process the signal. In this research, two class of emotion which are happy and sad are detected through EEG signal. Wavelet transform scalogram is used as feature extraction method. After that, the signal go through Convolutional Neural Network (CNN) for classification.