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Person re-identification in TV series using robust face recognition and user feedback

机译:电视剧中使用可靠的人脸识别和用户反馈进行人物重新识别

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In this paper, we present a system for person re-identification in TV series. In the context of video retrieval, person re-identification refers to the task where a user clicks on a person in a video frame and the system then finds other occurrences of the same person in the same or different videos. The main characteristic of this scenario is that no previously collected training data is available, so no person-specific models can be trained in advance. Additionally, the query data is limited to the image that the user clicks on. These conditions pose a great challenge to the re-identification system, which has to find the same person in other shots despite large variations in the person's appearance. In the study, facial appearance is used as the re-identification cue, since, in contrast to surveillance-oriented re-identification studies, the person can have different clothing in different shots. In order to increase the amount of available face data, the proposed system employs a face tracker that can track faces up to full profile views. This makes it possible to use a profile face image as query image and also to retrieve images with non-frontal poses. It also provides temporal association of the face images in the video, so that instead of using single images for query or target, whole tracks can be used. A fast and robust face recognition algorithm is used to find matching faces. If the match result is highly confident, our system adds the matching face track to the query set. Finally, if the user is not satisfied with the number of returned results, the system can present a small number of candidate face images and lets the user confirm the ones that belong to the queried person. These features help to increase the variation in the query set, making it possible to retrieve results with different poses, illumination conditions, etc. The system is extensively evaluated on two episodes of the TV series Coupling, showing very promising results.
机译:在本文中,我们提出了一个电视连续剧中的人物重新识别系统。在视频检索的上下文中,人员重新识别是指用户单击视频帧中的人员,然后系统在相同或不同的视频中查找同一人的其他事件的任务。这种情况的主要特征是以前没有收集到的训练数据可用,因此无法预先训练特定于人的模型。此外,查询数据仅限于用户单击的图像。这些条件对重新识别系统提出了很大的挑战,该系统必须在其他镜头中找到同一个人,尽管其外观有很大差异。在这项研究中,面部外观被用作重新识别提示,因为与面向监视的重新识别研究相比,该人在不同的镜头中可以穿着不同的衣服。为了增加可用面部数据的数量,所提出的系统采用了面部跟踪器,该跟踪器可以追踪多达完整个人资料视图的面部。这使得可以使用头像图像作为查询图像,还可以检索具有非正面姿势的图像。它还提供了视频中人脸图像的时间关联,因此可以使用整个轨迹,而不是使用单个图像进行查询或定位。一种快速且强大的人脸识别算法用于查找匹配的人脸。如果匹配结果高度可信,我们的系统会将匹配的面部轨迹添加到查询集中。最后,如果用户对返回结果的数量不满意,则系统可以呈现少量候选面部图像,并让用户确认属于被查询人的图像。这些功能有助于增加查询集中的差异,从而有可能检索具有不同姿势,光照条件等的结果。该系统在电视连续剧《联轴器》的两集中得到了广泛评估,显示出非常可观的结果。

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