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DetCo: Unsupervised Contrastive Learning for Object Detection

DetCo: Unsupervised Contrastive Learning for Object DetectionEnze Xie1 , Jian Ding3*, Wenhai Wang4, Xiaohang Zhan5,Hang Xu2, Peize Sun1, Zhenguo Li2, Ping Luo11 The University of Hong Kong2 Huawei Noah s Ark Lab3 Wuhan University4 Nanjing University5 Chinese University of Hong KongAbstractWe present DetCo, a simple yet effective self-supervisedapproach for Object Detection . Unsupervised pre-trainingmethods have been recently designed for Object Detection ,but they are usually deficient in image classification, or theopposite.

Self-supervised learning of visual representation is an es-sential problem in computer vision, facilitating many down-stream tasks such as image classification, object detection, and semantic segmentation [23,35,43]. It aims to provide models pre-trained on large-scale unlabeled data for down-stream tasks. Previous methods focus on designing ...

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  Learning, Visual, Representation, Unsupervised, Visual representation

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