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Facial Expression Recognition Based on Multi-Feature Fusion and HOSVD

机译:基于多特征融合和HOSVD的人脸表情识别

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To the problem of low recognition rate for human-independent facial expression, this paper proposed a facial expression recognition algorithm based on geometric and texture fusion features and HOSVD(High-Order Singular Value Decomposition). The algorithm transforms the facial expression recognition problem into the tensor domain, and extracts human-independent expression features using HOSVD. Then the interference caused by individual face differences on expression recognition is effectively excluded. The algorithm was tested on the Japanese Female Facial Expression database, and the results showed that the method achieved better recognition rate in human-independent experiments.
机译:针对人类独立的面部表情识别率低的问题,提出了一种基于几何和纹理融合特征以及HOSVD(高阶奇异值分解)的面部表情识别算法。该算法将面部表情识别问题转换为张量域,并使用HOSVD提取与人类无关的表情特征。从而有效地排除了由于个体面部差异而对表情识别造成的干扰。该算法在日本女性面部表情数据库上进行了测试,结果表明该方法在独立于人的实验中获得了较好的识别率。

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