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首页> 外文期刊>Journal of computational and theoretical nanoscience >A Facial Expression Recognition Algorithm with Supervised Orthogonal Locality Preserving Projection
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A Facial Expression Recognition Algorithm with Supervised Orthogonal Locality Preserving Projection

机译:具有监督正交位置预置投影的面部表情识别算法

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摘要

According to the characteristics of facial expression, this paper presents a facial expression recognition algorithm with supervised orthogonal locality preserving projection (SOLPP) based on combination of Gabor and local binary pattern (LBP) features. Because of the deficiency oftraditional Gabor feature extraction method, an innovative feature extraction method based on Gabor local statistic information is proposed. Each Gabor wavelet representation of an image is divided into some sub-blocks. Then the mean value and standard deviation in each sub-block are calculated,and the statistics of all Gabor wavelet representations are connected as feature vector. Taking into account the effectiveness of LBP to extract local expression texture, we combine local statistic features of Gabor wavelets with LBP textural features as composite facial expression features.After utilizing SOLPP to reduce the feature dimension of composite features, the facial expression image is classified by nearest neighbor method. Experimental results on JAFFE database, CED-WYU (1.0) database and TFEID database indicate the proposed method has higher recognition rate comparedwith other methods.
机译:根据面部表达的特征,本文基于Gabor和局部二进制模式(LBP)特征的组合,提出了一种具有监督正交局部定位预测投影(Solpp)的面部表情识别算法。由于缺乏传统的Gabor特征提取方法,提出了一种基于Gabor局部统计信息的创新特征提取方法。图像的每个Gabor小波表示分为一些子块。然后计算每个子块中的平均值和标准偏差,并且所有Gabor小波表示的统计数据被连接为特征向量。考虑到LBP提取本地表达式纹理的有效性,我们将Gabor小波的局部统计特征与LBP纹理特征相结合,作为复合面部表情特性。利用Solpp降低复合特征的特征尺寸,所以面部表达图像被分类最近的邻居方法。 Jaffe数据库的实验结果,CED-WYU(1.0)数据库和TFEID数据库表示所提出的方法具有更高的识别率与其他方法相比。

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