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首页> 外文期刊>Information Forensics and Security, IEEE Transactions on >Unconstrained Face Recognition: Identifying a Person of Interest From a Media Collection
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Unconstrained Face Recognition: Identifying a Person of Interest From a Media Collection

机译:不受约束的面部识别:从媒体库中识别感兴趣的人

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摘要

As face recognition applications progress from constrained sensing and cooperative subjects scenarios (e.g., driver’s license and passport photos) to unconstrained scenarios with uncooperative subjects (e.g., video surveillance), new challenges are encountered. These challenges are due to variations in ambient illumination, image resolution, background clutter, facial pose, expression, and occlusion. In forensic investigations where the goal is to identify a person of interest, often based on low quality face images and videos, we need to utilize whatever source of information is available about the person. This could include one or more video tracks, multiple still images captured by bystanders (using, for example, their mobile phones), 3-D face models constructed from image(s) and video(s), and verbal descriptions of the subject provided by witnesses. These verbal descriptions can be used to generate a face sketch and provide ancillary information about the person of interest (e.g., gender, race, and age). While traditional face matching methods generally take a single media (i.e., a still face image, video track, or face sketch) as input, this paper considers using the entire gamut of media as a probe to generate a single candidate list for the person of interest. We show that the proposed approach boosts the likelihood of correctly identifying the person of interest through the use of different fusion schemes, 3-D face models, and incorporation of quality measures for fusion and video frame selection.
机译:随着人脸识别应用程序从受限的感知和合作主体场景(例如,驾驶执照和护照照片)发展到具有不受合作主体的不受约束的场景(例如,视频监视),遇到了新的挑战。这些挑战归因于环境照明,图像分辨率,背景杂波,面部姿势,表情和遮挡的变化。在法医调查中,通常基于低质量的面部图像和视频,目标是识别感兴趣的人,我们需要利用有关该人的任何可用信息来源。这可能包括一个或多个视频轨道,旁观者捕获的多个静止图像(例如,使用其移动电话),根据图像和视频构建的3-D面部模型以及所提供主题的口头描述由目击者。这些口头描述可用于生成人脸草图并提供有关感兴趣的人的辅助信息(例如性别,种族和年龄)。尽管传统的人脸匹配方法通常将单个媒体(例如,静止的人脸图像,视频轨迹或人脸素描)作为输入,但是本文考虑使用整个媒体范围作为探针来为以下人群生成单个候选人列表:利益。我们表明,提出的方法通过使用不同的融合方案,3-D人脸模型以及融合融合和视频帧选择的质量度量,提高了正确识别感兴趣的人的可能性。

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