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MS-Celeb-1M: A Dataset and Benchmark for Large-Scale Face Recognition

机译:MS-Celeb-1M:大规模人脸识别的数据集和基准

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In this paper, we design a benchmark task and provide the associated datasets for recognizing face images and link them to corresponding entity keys in a knowledge base. More specifically, we propose a benchmark task to recognize one million celebrities from their face images, by using all the possibly collected face images of this individual on the web as training data. The rich information provided by the knowledge base helps to conduct disambiguation and improve the recognition accuracy, and contributes to various real-world applications, such as image captioning and news video analysis. Associated with this task, we design and provide concrete measurement set, evaluation protocol, as well as training data. We also present in details our experiment setup and report promising baseline results. Our benchmark task could lead to one of the largest classification problems in computer vision. To the best of our knowledge, our training dataset, which contains 10M images in version 1, is the largest publicly available one in the world.
机译:在本文中,我们设计了一个基准任务,并提供了用于识别人脸图像的关联数据集,并将它们链接到知识库中的相应实体键。更具体地说,我们提出了一项基准测试任务,通过使用此人在网络上所有可能收集的面部图像作为训练数据,从其面部图像中识别一百万名名人。知识库提供的丰富信息有助于消除歧义并提高识别准确性,并有助于各种现实世界的应用程序,例如图像字幕和新闻视频分析。与此任务相关的是,我们设计并提供具体的测量集,评估协议以及培训数据。我们还详细介绍了我们的实验设置,并报告了有希望的基准结果。我们的基准任务可能会导致计算机视觉中最大的分类问题之一。据我们所知,我们的训练数据集(包含第1版中的1000万张图片)是世界上最大的公开可用图片集。

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