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A New Virtual Samples-Based CRC Method for Face Recognition

机译:一种新的基于虚拟样本的CRC人脸识别方法

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The research of automatic face recognition has attracted much attention from many researchers because of human faces’ uniqueness and usability. However, in the real-world applications, the acquisition equipment of face images is affected by illumination changes, facial expression variations, different postures and other environment factors, resulting in limited number of face images collected. This situation has become an obstacle to the development of face recognition technology. Therefore, in this paper, we utilize the information of the left-half face and right-half face to generate respectively two virtual ‘axis-symmetrical’ face images from an original face image and adopt collaborative representation based classification method (CRC) to perform classification. The first and second virtual face images convey more information of the right-half face and left-half face, respectively. Experiments have been performed on the Extended Yale_B, ORL, AR and FERET face databases and the experimental results show that our method can improve the recognition accuracy effectively.
机译:由于人脸的独特性和实用性,自动人脸识别的研究引起了许多研究人员的关注。但是,在实际应用中,人脸图像的采集设备会受到光照变化,人脸表情变化,不同姿势和其他环境因素的影响,导致人脸图像的采集数量有限。这种情况已经成为面部识别技术发展的障碍。因此,在本文中,我们利用左半脸和右半脸的信息从原始人脸图像分别生成两个虚拟的“轴对称”人脸图像,并采用基于协作表示的分类方法(CRC)来执行分类。第一和第二虚拟面部图像分别传达更多关于右半面部和左半面部的信息。在扩展的Yale_B,ORL,AR和FERET人脸数据库上进行了实验,实验结果表明我们的方法可以有效地提高识别精度。

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