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Video-based facial expression recognition using histogram sequence of local Gabor binary patterns from three orthogonal planes

机译:使用来自三个正交平面的局部Gabor二进制模式的直方图序列的基于视频的面部表情识别

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Video-based facial expression recognition has received significant attention in recent years due to its widespread applications. One key issue for video-based facial expression analysis in practice is how to extract dynamic features. In this paper, a novel approach is presented using histogram sequence of local Gabor binary patterns from three orthogonal planes (LGBP-TOP). In this approach, every facial expression sequence is firstly convolved with the multi-scale and multi-orientation Gabor filters to extract the Gabor Magnitude Sequences (GMSs). Then, we use local binary patterns from three orthogonal planes (LBP-TOP) on each GMS to further enhance the feature extraction. Finally, the facial expression sequence is modeled as a histogram sequence by concatenating the histogram pieces of all the local regions of all the LGBP-TOP maps. For recognition, Support Vector Machine (SVM) is exploited. Our experimental results on the extended Cohn-Kanade database (CK+) demonstrate that the proposed method has achieved the best results compared to other methods in recent years.
机译:基于视频的面部表情识别由于其广泛的应用近年来受到了广泛的关注。在实践中,基于视频的面部表情分析的一个关键问题是如何提取动态特征。在本文中,提出了一种使用来自三个正交平面(LGBP-TOP)的局部Gabor二进制模式的直方图序列的新颖方法。在这种方法中,首先将每个面部表情序列与多尺度和多方向Gabor滤波器进行卷积,以提取Gabor幅度序列(GMS)。然后,我们在每个GMS上使用来自三个正交平面(LBP-TOP)的局部二进制模式来进一步增强特征提取。最后,通过串联所有LGBP-TOP图的所有局部区域的直方图片段,将面部表情序列建模为直方图序列。为了识别,利用支持向量机(SVM)。我们在扩展的Cohn-Kanade数据库(CK +)上的实验结果表明,与近年来的其他方法相比,该方法已取得最佳结果。

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