基于比较软生物识别技术的人脸识别

N. Almudhahka, M. Nixon, Jonathon S. Hare
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引用次数: 23

摘要

软生物识别技术可以根据从目击者那里收集的语义描述来识别目标,从而使人们能够在监控数据库中进行搜索。尽管最近的研究表明,人们对软生物识别技术的兴趣越来越大,但使用众包的工作并不多,而且也没有研究特征选择对识别的影响。在本文中,我们引入了一套新的面部软生物特征和标签,并对眉毛区域进行了新的描述。此外,我们研究了使用众包来标记比较面部软生物特征,并评估其对识别的影响。此外,我们探讨了特征选择与我们的生物特征测量的影响,并评估了标签尺度压缩的效果。基于南安普顿生物特征隧道数据库的实验表明,仅使用20个特征就可以实现100%的1级识别率。
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Human face identification via comparative soft biometrics
Soft biometrics enable the identification of subjects based on semantic descriptions collected from eye-witnesses allowing people to search in surveillance databases. Although research has recently shown an increased interest in soft biometrics, not much of the work have used crowdsourcing, and it did not investigate the impact of feature selection on identification. In this paper, we introduce a new set of facial soft biometrics and labels with a novel description for the eyebrow region. Also, we examine the use of crowdsourcing for labelling the comparative facial soft biometrics and assess its impact on the identification. Moreover, we explore the impact of feature selection with our biometric measures and evaluate the effect of label scale compression. Experiments based on the Southampton biometric tunnel database demonstrate a 100% rank-1 identification rate using 20 features only.
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