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Face and expression recognition based on bag of words method considering holistic and local image features

机译:基于单词方法的面部和表达识别考虑整体和局部图像特征

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This paper proposes a new framework for extracting facial features based on the bag of words method, and applies it to face and facial expression recognition. Recently, the bag of words method has been successfully used in object recognition. However, for recognition problems of facial images, the orderless collection of local patches in bag of words method cannot provide strongly distinctive information since the object category (face image) is the same. In our work, a new framework based on bag of words is presented to extract discriminative local facial features while maintaining holistic spatial information at the same time. The new method is applied to both face and facial expression recognition. Experimental results show that only using one neutral expression frame per person for training, our method can obtain the best face recognition performance ever on face images of AR database with extreme expressions, variant illuminations, and partial occlusions. For facial expression recognition, the average rate on the Cohn-Kanade database is 96.33%, which also outperforms the state of the arts.
机译:本文提出了一种基于单词方法的袋子提取面部特征的新框架,并将其应用于面部和面部表情识别。最近,袋子方法已经成功地用于对象识别。然而,对于面部图像的识别问题,单词方法中的局部贴片的无数收集不能提供强烈独特的信息,因为对象类别(面部图像)是相同的。在我们的工作中,提出了一种基于单词包的新框架,以提取歧视的本地面部特征,同时保持整体空间信息。新方法适用于面部和面部表情识别。实验结果表明,只有每人使用一个中性表达帧进行培训,我们的方法可以获得具有极端表达,变体照明和部分闭塞的AR数据库的面部图像上的最佳面部识别性能。对于面部表情识别,Cohn-Kanade数据库的平均速率为96.33%,这也优于现有技术。

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