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On Combining Edge Detection Methods for Improving BSIF Based Facial Recognition Performances

机译:结合边缘检测方法改善基于BSIF的人脸识别性能

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Lighting variation is a major challenge for an automatic face recognition system. In order to overcome this problem, many methods have been proposed. Most of them try to extract features invariant to illumination changes or to reduce illumination changes in a pre-processing step and to extract features for recognition. In this paper, we present a procedure similar to the latter where the two steps are complementary. In the pre-processing step we deal with the illumination changes and in the features extraction step we use the BSIF (Binarized Statistical Image Features), a recently proposed tex-tural algorithm. In our opinion, a method capable of reducing the lighting variations is ideal for an algorithm like the BSIF. The performance of our system has been tested on the FRGC dataset and the presented results show the validity of our approach.
机译:照明变化是自动面部识别系统的主要挑战。为了克服这个问题,已经提出了许多方法。它们中的大多数尝试在预处理步骤中提取不随照明变化而变化的特征或减少照明变化并提取特征以进行识别。在本文中,我们提出了与后者相似的过程,其中两个步骤是互补的。在预处理步骤中,我们处理照明变化,而在特征提取步骤中,我们使用BSIF(二进制统计图像特征),这是最近提出的tex-tural算法。我们认为,对于像BSIF这样的算法,一种能够减少光照变化的方法是理想的。我们的系统性能已在FRGC数据集上进行了测试,显示的结果表明了我们方法的有效性。

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