首页> 外文会议>International Conference on Intelligent Data Engineering and Automated Learing(IDEAL 2007); 20071216-19; Birmingham(GB) >Influence of Wavelet Frequency and Orientation in an SVM-Based Parallel Gabor PCA Face Verification System
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Influence of Wavelet Frequency and Orientation in an SVM-Based Parallel Gabor PCA Face Verification System

机译:小波频率和方向在基于SVM的并行Gabor PCA人脸验证系统中的影响

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We present a face verification system using Parallel Gabor Principal Component Analysis (PGPCA) and fusion of Support Vector Machines (SVM) scores. The algorithm has been tested on two databases: XM2VTS (frontal images with frontal or lateral illumination) and FRAV2D (frontal images with diffuse or zenithal illumination, varying poses and occlusions). Our method outperforms others when fewer PCA coefficients are kept. It also has the lowest equal error rate (EER) in experiments using frontal images with occlusions. We have also studied the influence of wavelet frequency and orientation on the EER in a one-Gabor PCA. The high frequency wavelets are able to extract more discriminant information compared to the low frequency wavelets. Moreover, as a general rule, oblique wavelets produce a lower EER compared to horizontal or vertical wavelets. Results also suggest that the optimal wavelet orientation coincides with the illumination gradient.
机译:我们提出一种使用并行Gabor主成分分析(PGPCA)和支持向量机(SVM)分数融合的人脸验证系统。该算法已在两个数据库上进行了测试:XM2VTS(具有正面或侧面照明的正面图像)和FRAV2D(具有散射或天顶照明,变化的姿势和遮挡的正面图像)。当保留较少的PCA系数时,我们的方法会优于其他方法。在使用带有遮挡的正面图像的实验中,它的最低均等错误率(EER)。我们还研究了小波频率和方向对一Gabor PCA中EER的影响。与低频小波相比,高频小波能够提取更多判别信息。而且,通常,与水平或垂直小波相比,倾斜小波产生的EER较低。结果还表明最佳小波方向与照明梯度一致。

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