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Toward Development of a Face Recognition System for Watchlist Surveillance

机译:面向监视列表人脸识别系统的开发

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The interest in face recognition is moving toward real-world applications and uncontrolled sensing environments. An important application of interest is automated surveillance, where the objective is to recognize and track people who are on a watchlist. For this open world application, a large number of cameras that are increasingly being installed at many locations in shopping malls, metro systems, airports, etc., will be utilized. While a very large number of people will approach or pass by these surveillance cameras, only a small set of individuals must be recognized. That is, the system must reject every subject unless the subject happens to be on the watchlist. While humans routinely reject previously unseen faces as strangers, rejection of previously unseen faces has remained a difficult aspect of automated face recognition. In this paper, we propose an approach motivated by human perceptual ability of face recognition which can handle previously unseen faces. Our approach is based on identifying the decision region(s) in the face space which belong to the target person(s). This is done by generating two large sets of borderline images, projecting just inside and outside of the decision region. For each person on the watchlist, a dedicated classifier is trained. Results of extensive experiments support the effectiveness of our approach. In addition to extensive experiments using our algorithm and prerecorded images, we have conducted considerable live system experiments with people in realistic environments.
机译:对面部识别的兴趣正朝着实际应用和不受控制的传感环境发展。感兴趣的重要应用是自动监视,其目的是识别和跟踪监视列表中的人员。对于这种开放世界的应用,将利用大量的摄像机,这些摄像机越来越多地安装在购物中心,地铁系统,机场等的许多地方。尽管会有很多人接近或经过这些监控摄像头,但只需要识别少数人即可。也就是说,系统必须拒绝每个主题,除非该主题恰巧在监视列表中。尽管人类通常会拒绝以前看不见的面孔作为陌生人,但拒绝以前看不见的面孔仍然是自动面部识别的一个困难方面。在本文中,我们提出了一种基于人的面部识别能力的方法,该方法可以处理以前看不见的面部。我们的方法是基于识别面部空间中属于目标人的决策区域。这是通过生成两组较大的边界线图像完成的,这些边界线图像正好投影在决策区域的内部和外部。对于关注列表中的每个人,都会训练一个专门的分类器。大量实验的结果支持了我们方法的有效性。除了使用我们的算法和预先记录的图像进行广泛的实验之外,我们还与现实环境中的人员进行了相当多的实时系统实验。

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