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Emotion Recognition using EEG Signals with Relative Power Values and Bayesian Network
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  • Emotion Recognition using EEG Signals with Relative Power Values and Bayesian Network
  • Emotion Recognition using EEG Signals with Relative Power Values and Bayesian Network
저자명
Ko. Kwang-Eun,Yang. Hyun-Chang,Sim. Kwee-Bo
간행물명
International Journal of Control, Automation and Systems
권/호정보
2009년|7권 5호|pp.865-870 (6 pages)
발행정보
제어로봇시스템학회
파일정보
정기간행물|ENG|
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기타
이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
서지반출

기타언어초록

Many researchers use electroencephalograms (EEGs) to study brain activity in the context of seizures, epilepsy, and lie detection. It is desirable to eliminate EEG artifacts to improve signal collection. In this paper, we propose an emotion recognition system for human brain signals using EEG signals. We measure EEG signals relating to emotion, divide them into five frequency ranges on the basis of power spectrum density, and eliminate low frequencies from 0 to 4 Hz to eliminate EEG artifacts. The resulting calculations of the frequency ranges are based on the percentage of the selected range relative to the total range. The calculated values are then compared to standard values from a Bayesian network, calculated from databases. Finally, we show the emotion results as a human face avatar.