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VGGFace2: A Dataset for Recognising Faces across Pose and Age

机译:Vggface2:用于识别跨构成和年龄的面孔的数据集

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In this paper, we introduce a new large-scale face dataset named VGGFace2. The dataset contains 3.31 million images of 9131 subjects, with an average of 362.6 images for each subject. Images are downloaded from Google Image Search and have large variations in pose, age, illumination, ethnicity and profession (e.g. actors, athletes, politicians). The dataset was collected with three goals in mind: (i) to have both a large number of identities and also a large number of images for each identity; (ii) to cover a large range of pose, age and ethnicity; and (iii) to minimise the label noise. We describe how the dataset was collected, in particular the automated and manual filtering stages to ensure a high accuracy for the images of each identity. To assess face recognition performance using the new dataset, we train ResNet-50 (with and without Squeeze-and-Excitation blocks) Convolutional Neural Networks on VGGFace2, on MS-Celeb-1M, and on their union, and show that training on VGGFace2 leads to improved recognition performance over pose and age. Finally, using the models trained on these datasets, we demonstrate state-of-the-art performance on the IJB-A and IJB-B face recognition benchmarks, exceeding the previous state-of-the-art by a large margin. The dataset and models are publicly available.
机译:在本文中,我们介绍了一个名为Vggface2的新型大规模面部数据集。该数据集包含331万个受试者的图像,平均每次受试者平均362.6图像。从Google Image搜索下载图像,并具有姿势,年龄,照明,种族和专业的大变化(例如,演员,运动员,政客)。数据集在思想中用三个目标收集:(i)既有大量的身份也有大量的图像为每个身份; (ii)涵盖大量的姿势,年龄和种族; (iii)以最小化标签噪声。我们描述了如何收集数据集,特别是自动化和手动过滤级,以确保每个身份的图像的高精度。为了评估使用新数据集的面部识别性能,我们在MS-CeleB-1M和其联盟上训练Reset-50(带有和没有挤压和激励块)卷积神经网络,并显示vggface2上的培训导致对姿势和年龄的识别性能提高。最后,使用在这些数据集上培训的模型,我们展示了IJB-A和IJB-B人脸识别基准上的最先进的性能,超过了以前的最先进的余量。数据集和模型是公开可用的。

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