한국감성과학회:학술대회논문집 (Proceedings of the Korean Society for Emotion and Sensibility Conference)
- 한국감성과학회 2000년도 춘계 학술대회 및 국제 감성공학 심포지움 논문집 Proceeding of the 2000 Spring Conference of KOSES and International Sensibility Ergonomics Symposium
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- Pages.126-132
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- 2000
Facial Expression Recognition with Fuzzy C-Means Clusstering Algorithm and Neural Network Based on Gabor Wavelets
- Youngsuk Shin (Graduate Program in Cognitive Science of Yonsei University) ;
- Chansup Chung (Department of Psychology in Yonsei University) ;
- Lee, Yillbyung (Department of Computer Science & Industrial Systems Engineering in Yonsei University)
- 발행 : 2000.04.01
초록
This paper presents a facial expression recognition based on Gabor wavelets that uses a fuzzy C-means(FCM) clustering algorithm and neural network. Features of facial expressions are extracted to two steps. In the first step, Gabor wavelet representation can provide edges extraction of major face components using the average value of the image's 2-D Gabor wavelet coefficient histogram. In the next step, we extract sparse features of facial expressions from the extracted edge information using FCM clustering algorithm. The result of facial expression recognition is compared with dimensional values of internal stated derived from semantic ratings of words related to emotion. The dimensional model can recognize not only six facial expressions related to Ekman's basic emotions, but also expressions of various internal states.
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