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A Data Association Algorithm for People Re-identification in Photo Sequences

机译:一种照片序列中人物重新识别的数据关联算法

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In this paper, a new system is presented to support the user in the face annotation task. Every time a photo sequence becomes available, the system analyses it to detect and cluster faces in set corresponding to the same person. We propose to model the problem of people re-identification in photos as a data association problem. In this way, the system takes advantage from the assumption that each person can appear at most once in each photo. We propose a fully automated method for grouping facial images, the method does not require any initialization neither a priori knowledge of the number of persons that are in the photo sequence. We compare the results obtained with our method and with standard clustering methods on three personal collections and on a publicly available dataset.
机译:在本文中,提出了一种新系统来支持用户的面部注释任务。每当有照片序列可用时,系统都会对其进行分析,以检测并聚类对应于同一个人的脸部。我们建议将照片中人物的重新识别问题建模为数据关联问题。以这种方式,系统利用了每个人在每张照片中最多可以出现一次的假设。我们提出了一种用于对面部图像进行分组的全自动方法,该方法不需要任何初始化,也无需事先知道照片序列中的人数。我们比较了我们的方法和标准聚类方法在三个个人收藏和一个公开可用的数据集上获得的结果。

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