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Contextual Weighting of Patches for Local Matching in Still-to-Video Face Recognition

机译:静止视频面部识别本地匹配的修补程序的上下文加权

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Still-to-video face recognition (FR) systems for watchlist screening seek to recognize individuals of interest given faces captured over a network of video surveillance cameras. Screening faces against a watchlist is a challenging application because only a limited number of reference stills is available per individual during enrollment, and the appearance of face captures in videos changes from camera to camera, due to variations in illumination, pose, blur, scale, expression and occlusion. In order to improve the robustness of FR systems, several local matching techniques have been proposed that rely on static or dynamic weighting of patches. However, these approaches are not suitable for watchlist screening applications where the capturing conditions vary significantly over different camera fields of view (FoV). In this paper, a new dynamic weighting technique is proposed for weighting facial patches based on video data collected a priori from the specific operational domain (camera FoV) and on image quality assessment. Results obtained on videos from the Chokepoint dataset indicate that the proposed approach can significantly outperform the reference local matching methods because patch weights tend to grow for discriminant facial regions.
机译:用于监视列表筛选的静止视频面部识别(FR)系统寻求识别给予通过网络监控摄像机网络捕获的面孔的兴趣的个人。对监视列表的筛选面是一个具有挑战性的应用程序,因为在注册期间只有有限数量的参考仍然可以在视频中捕获的外观从相机变为相机,由于照明,姿势,模糊,刻度的变化,表达和闭塞。为了提高FR系统的稳健性,已经提出了几种局部匹配技术,依赖于贴片的静态或动态加权。然而,这些方法不适用于观察列表筛查应用,其中捕获条件在不同的相机视野(FOV)上显着变化。本文提出了一种新的动态加权技术,用于基于视频数据从特定操作域(相机FOV)和图像质量评估收集的视频数据加权面部贴片。在ChokePoint DataSet的视频上获得的结果表明所提出的方法可以显着优于参考本地匹配方法,因为贴片重量倾向于为判别面部区域增长。

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