局部二值模式作为人脸认证的图像预处理

G. Heusch, Yann Rodriguez, S. Marcel
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引用次数: 208

摘要

人脸认证系统的主要问题之一是处理光照的变化。在现实场景中,探测图像的光照条件很可能与图库图像的光照条件不对应,因此需要处理这种变化。在这项工作中,我们提出了一种新的基于局部二值模式(LBP)的预处理算法:在转发给分类器之前,从输入的人脸图像中导出纹理表示。在两个数据库:BANCA和XM2VTS(及其暗集)上使用基于外观(LDA)和基于特征(HMM)的人脸认证系统,经验证明了所提出方法的有效性。所进行的实验表明,与最先进的预处理技术获得的结果相比,在验证错误率方面有了显着改善
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Local binary patterns as an image preprocessing for face authentication
One of the major problem in face authentication systems is to deal with variations in illumination. In a realistic scenario, it is very likely that the lighting conditions of the probe image does not correspond to those of the gallery image, hence there is a need to handle such variations. In this work, we present a new preprocessing algorithm based on local binary patterns (LBP): a texture representation is derived from the input face image before being forwarded to the classifier. The efficiency of the proposed approach is empirically demonstrated using both an appearance-based (LDA) and a feature-based (HMM) face authentication systems on two databases: BANCA and XM2VTS (with its darkened set). Conducted experiments show a significant improvement in terms of verification error rates and compare to results obtained with state-of-the-art preprocessing techniques
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