Batch DropBlock Network for Person Re-Identification and Beyond
Zuozhuo Dai, Mingqiang Chen, Xiaodong Gu, Siyu Zhu, Ping Tan
摘要
Since the person re-identification task often suffers from the problem of pose changes and occlusions, some attentive local features are often suppressed when training CNNs. In this paper, we propose the Batch DropBlock (BDB) Network which is a two branch network composed of a conventional ResNet-50 as the global branch and a feature dropping branch. The global branch encodes the global salient representations. Meanwhile, the feature dropping branch consists of an attentive feature learning module called Batch DropBlock, which randomly drops the same region of all input feature maps in a batch to reinforce the attentive feature learning of local regions. The network then concatenates features from both branches and provides a more comprehensive and spatially distributed feature representation. Albeit simple, our method achieves state-of-the-art on person re-identification and it is also applicable to general metric learning tasks. For instance, we achieve 76.4% Rank-1 accuracy on the CUHK03-Detect dataset and 83.0% Recall-1 score on the Stanford Online Products dataset, outperforming the existing works by a large margin (more than 6%).
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引用它的顶会 Paper23
- Omni-Scale Feature Learning for Person Re-IdentificationKaiyang Zhou, Yongxin Yang, Andrea Cavallaro, Tao XiangICCV 2019 · 被引用 997 次
- CLIP-ReID: Exploiting Vision-Language Model for Image Re-identification without Concrete Text LabelsSiyuan Li, Li Sun, Qingli LiAAAI 2023 · 被引用 355 次
- HAT: Hierarchical Aggregation Transformers for Person Re-identificationGuowen Zhang, Pingping Zhang, Jinqing Qi, Huchuan LuACM MM 2021 · 被引用 159 次
- AXM-Net: Implicit Cross-Modal Feature Alignment for Person Re-identificationAmmarah Farooq, Muhammad Awais, Josef Kittler, Syed Safwan KhalidAAAI 2022 · 被引用 126 次
- Cascade Transformers for End-to-End Person SearchRui Yu, Dawei Du, Rodney LaLonde, Daniel Davila 等CVPR 2022 · 被引用 86 次
它引用的顶会 Paper1
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