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一种基于局部Gabor滤波器组及PCA+LDA的人脸表情识别方法

DOI: 10.11834/jig.20070224

Keywords: 局部Gabor滤波器组,特征提取,主元分析,线性判别分析,人脸表情识别

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Abstract:

针对传统的Gabor滤波器组存在特征提取时间较长以及特征数据存在冗余性的缺点,提出了一种新颖的局部Gabor滤波器组。为了评估该方法的识别性能,提出了一个基于Gabor特征的人脸表情识别系统。该系统首先对经过预处理之后的纯表情图像提取Gabor特征,然后用PCALDA方法对采样后的特征进行特征选择,最后采用K近邻分类方法识别人脸表情。实验结果表明,这种方法无论在计算量还是识别性能上都比传统的Gabor滤波器组更具有优势。该方法的创新之处在于选取局部Gabor滤波器,最高平均识别率达到了97.33%,表明其适合于人脸表情图像的分析。

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