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Video Face Clustering With Unknown Number of Clusters

机译:具有未知数量簇的视频人脸簇

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Understanding videos such as TV series and movies requires analyzing who the characters are and what they are doing. We address the challenging problem of clustering face tracks based on their identity. Different from previous work in this area, we choose to operate in a realistic and difficult setting where: (i) the number of characters is not known a priori; and (ii) face tracks belonging to minor or background characters are not discarded. To this end, we propose Ball Cluster Learning (BCL), a supervised approach to carve the embedding space into balls of equal size, one for each cluster. The learned ball radius is easily translated to a stopping criterion for iterative merging algorithms. This gives BCL the ability to estimate the number of clusters as well as their assignment, achieving promising results on commonly used datasets. We also present a thorough discussion of how existing metric learning literature can be adapted for this task.
机译:要了解电视剧和电影等视频,需要分析角色是谁以及他们在做什么。我们解决了根据脸部身份将脸部轨迹聚类的挑战性问题。与该领域以前的工作不同,我们选择在一个现实而困难的环境中进行操作:(i)先验字符数未知; (ii)属于次要或背景角色的面部轨迹不会被丢弃。为此,我们提出了球聚类学习(BCL),一种有监督的方法,可以将嵌入空间雕刻成大小相等的球,每个聚类一个。学习的球半径很容易转换为迭代合并算法的停止准则。这使BCL能够估计群集的数量及其分配,从而在常用数据集上获得可喜的结果。我们还对如何将现有的度量学习文献进行调整进行了全面的讨论。

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