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Feature extraction through Binary Pattern of Phase Congruency for facial expression recognition

机译:通过相一致的二进制模式进行面部表情识别的特征提取

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Although facial expression plays an important role in human interaction, automated facial expression analysis is still a challenging task. This paper presents a novel facial descriptor based on Phase Congruency (PC) and Local Binary Pattern (LBP) for facial expression recognition. The proposed descriptor, named Binary Pattern of Phase Congruency (BPPC), is an oriented and multi-scale local descriptor that is able to encode various patterns of face images. It is constructed by applying LBP on the oriented PC images. We evaluated the proposed method using the Cohn-Kanade (CK+) database. In our experiment, we achieved an overall detection rate of 93.83% for the six basic emotions. This shows the effectiveness of the proposed method.
机译:尽管面部表情在人与人之间的互动中起着重要作用,但是自动化的面部表情分析仍然是一项艰巨的任务。本文提出了一种基于相位一致性(PC)和局部二值模式(LBP)的面部表情识别器。提出的描述符,称为相位一致性二进制模式(BPPC),是一种定向的多尺度本地描述符,能够对面部图像的各种模式进行编码。它是通过在定向的PC图像上应用LBP来构造的。我们使用Cohn-Kanade(CK + )数据库对提出的方法进行了评估。在我们的实验中,我们对六种基本情绪的总体检测率为93.83%。这表明了所提出方法的有效性。

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