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A Novel Method for Emotion Recognition based on the EEG Signal using Gradients
- 한의환;
- 차형태
초록
There are several algorithms to classify emotion, such as Support-vector-machine (SVM), Bayesian decision rule, etc. However, many researchers have insisted that these methods have minor problems. Therefore, in this paper, we propose a novel method for emotion recognition based on Electroencephalogram (EEG) signal using the Gradient method which was proposed by Han. We also utilize a database for emotion analysis using physiological signals (DEAP) to obtain objective data. And we acquire four channel brainwaves, including Fz (α), Fp2 (β), F3 (α), F4 (α) which are selected in previous study. We use 4 features which are power spectral density (PSD) of the above channels. According to performance evaluation (4-fold cross validation), we could get 85% accuracy in valence axis and 87.5% in arousal. It is 5-7% higher than existing method’s.
키워드
- 제목
- A Novel Method for Emotion Recognition based on the EEG Signal using Gradients
- 제목 (타언어)
- EEG 신호 기반 경사도 방법을 통한 감정인식에 대한 연구
- 저자
- 한의환; 차형태
- 발행일
- 2017-07
- 저널명
- 전자공학회논문지
- 권
- 54
- 호
- 7
- 페이지
- 71 ~ 78