有效的人脸识别与年龄变化补偿

J. S. Nayak, M. Indiramma
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引用次数: 14

摘要

人脸识别是基于面部特征来识别一个人。自动人脸识别是从一个被称为gallery的目标人群中识别一个被称为probe的给定查询脸。当人际图像比个人内部图像具有更多的区别特征时,人脸识别算法表现良好。面部的变化降低了个人形象的相似性。面部的变化可能是由于姿势、表情、光照的变化和一个人的年龄。人脸识别的准确性在很大程度上受年龄相关的面部变化的影响。衰老对面部的影响不是均匀的,它既取决于内在因素,也取决于外在因素,如地理位置、种族、饮食习惯等。尽管衰老对每个人来说都是一个明显的现象,但面部变化对每个人来说都是独一无二的。因此,在补偿与年龄相关的差异方面仍存在许多挑战。在本文中,我们提出了一种新的基于自pca的方法,以考虑一个人的年龄对年龄不变人脸识别的影响的独特性。眼睛周围的区域作为输入特征,而不是整个脸部,因为它是脸部相对于老化更稳定的部分,也需要更少的空间。利用FG-NET数据库的图像对所提出的方法进行了测试。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient face recognition with compensation for aging variations
Face recognition is identifying a person based on facial characteristics. Automated face recognition is identifying a given query face called probe from a target population known as gallery. The face recognition algorithms perform well when the interpersonal images have more discriminating features than intra personal images. The changes in the face bring down the similarity of the intrapersonal images. The variations in the face can be due to pose, expression, illumination changes and aging of a person. Face recognition accuracy is largely influenced by the age related changes in face. Aging effects on face are not uniform and depend on both intrinsic as well as external factors like geographic location, race, food habits etc. The facial changes are exclusive for each person in spite of aging being an apparent phenomenon among all individuals. Hence there are many challenges still open in compensating age related variations. In this paper we have proposed a novel self-PCA based approach in order to consider distinctiveness of the effects of aging of a person for age invariant face recognition. The region around the eyes is used as the input feature instead of the entire face as it is more stable part of the face with respect to aging and also requires less space. The proposed approach is tested using the images of the FG-NET database.
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