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논문 기본 정보

자료유형
학술저널
저자정보
Jianing Shen (Wuxi Taihu University) Hongmei Li (The 58th Research Institute of China Electronics Technology Group Corporation)
저널정보
한국정보처리학회 JIPS(Journal of Information Processing Systems) JIPS(Journal of Information Processing Systems) 제19권 제3호
발행연도
2023.6
수록면
323 - 333 (11page)
DOI
10.3745/JIPS.02.0198

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초록· 키워드

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Facial expression recognition can aid in the development of fatigue driving detection, teaching qualityevaluation, and other fields. In this study, a facial expression recognition method was proposed with a residualmasking reconstruction network as its backbone to achieve more efficient expression recognition andclassification. The residual layer was used to acquire and capture the information features of the input image,and the masking layer was used for the weight coefficients corresponding to different information features toachieve accurate and effective image analysis for images of different sizes. To further improve the performanceof expression analysis, the loss function of the model is optimized from two aspects, feature dimension anddata dimension, to enhance the accurate mapping relationship between facial features and emotional labels. Thesimulation results show that the ROC of the proposed method was maintained above 0.9995, which canaccurately distinguish different expressions. The precision was 75.98%, indicating excellent performance ofthe facial expression recognition model.

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