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Face recognition from caption-based supervision

机译:基于字幕监控的人脸识别

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In this paper, we present methods for face recognition using a collection of images with captions. We consider two tasks: retrieving all faces of a particular person in a data set, and establishing the correct association between the names in the captions and the faces in the images. This is challenging because of the very large appearance variation in the images, as well as the potential mismatch between images and their captions. For both tasks, we compare generative and discriminative probabilistic models, as well as methods that maximize subgraph densities in similarity graphs. We extend them by considering different metric learning techniques to obtain appropriate face representations that reduce intra person variability and increase inter person separation. For the retrieval task, we also study the benefit of query expansion. To evaluate performance, we use a new fully labeled data set of 31147 faces which extends the recent Labeled Faces in the Wild data set. We present extensive experimental results which show that metric learning significantly improves the performance of all approaches on both tasks.
机译:在本文中,我们介绍了使用带有字幕的图像集合进行人脸识别的方法。我们考虑了两个任务:检索数据集中特定人的所有面孔,以及在标题中的姓名和图像中的面孔之间建立正确的关联。这是具有挑战性的,因为图像中的外观变化非常大,并且图像及其字幕之间可能存在不匹配的情况。对于这两个任务,我们比较了生成概率模型和判别概率模型,以及使相似图中的子图密度最大化的方法。我们通过考虑不同的度量学习技术来扩展它们,以获得适当的面部表情,以减少人际差异并增加人际分离。对于检索任务,我们还研究了查询扩展的好处。为了评估性能,我们使用了一个新的完全标记的31147张人脸数据集,该数据集扩展了Wild数据集中最近的Labeled Faces。我们提供了广泛的实验结果,这些结果表明,度量学习可以显着提高所有方法在两个任务上的性能。

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