Rotation Invariant Transformer for Recognizing Object in UAVs
Shuoyi Chen, Mang Ye, Bo Du
摘要
Recognizing a target of interest from the UAVs is much more challenging than the existing object re-identification tasks across multiple city cameras. The images taken by the UAVs usually suffer from significant size difference when generating the object bounding boxes and uncertain rotation variations. Existing methods are usually designed for city cameras, incapable of handing the rotation issue in UAV scenarios. A straightforward solution is to perform the image-level rotation augmentation, but it would cause loss of useful information when inputting the powerful vision transformer as patches. This motivates us to simulate the rotation operation at the patch feature level, proposing a novel rotation invariant vision transformer (RotTrans). This strategy builds on high-level features with the help of the specificity of the vision transformer structure, which enhances the robustness against large rotation differences. In addition, we design invariance constraint to establish the relationship between the original feature and the rotated features, achieving stronger rotation invariance. Our proposed transformer tested on the latest UAV datasets greatly outperforms the current state-of-the-arts, which is 5.9% and 4.8% higher than the highest mAP and Rank1. Notably, our model also performs competitively for the person re-identification task on traditional city cameras. In particular, our solution wins the first place in the UAV-based person re-recognition track in the Multi-Modal Video Reasoning and Analyzing Competition held in ICCV 2021. Code is available at https://github.com/whucsy/RotTrans.
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引用它的顶会 Paper6
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- Bridging the Sky and Ground: Towards View-Invariant Feature Learning for Aerial-Ground Person Re-IdentificationWajahat Khalid, Bin Liu, Xulin Li, Muhammad Waqas 等ICCV 2025 · 被引用 8 次
- Object-Generalized Re-Identification: A Step Towards Universal Instance PerceptionShuoyi Chen, Yurui Wu, Mang YeCVPR 2026 · 被引用 1 次
- SeCap: Self-Calibrating and Adaptive Prompts for Cross-view Person Re-Identification in Aerial-Ground NetworksShining Wang, Yunlong Wang, Ruiqi Wu, Bingliang Jiao 等CVPR 2025
- Semantic-Driven Visual Progressive Refinement for Aerial-Ground Person ReID: A Challenging Large-Scale BenchmarkAihua Zheng, Hao Xie, Xixi Wan, Zi Wang 等AAAI 2026
它引用的顶会 Paper27
- Swin Transformer: Hierarchical Vision Transformer using Shifted WindowsZe Liu, Yutong Lin, Yue Cao, Han Hu 等ICCV 2021 · 被引用 31,683 次
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- Deformable DETR: Deformable Transformers for End-to-End Object DetectionXizhou Zhu, Weijie Su, Lewei Lu, Bin Li 等ICLR 2021 · 被引用 7,353 次
- Pyramid Vision Transformer: A Versatile Backbone for Dense Prediction without ConvolutionsWenhai Wang, Enze Xie, Xiang Li, Deng-Ping Fan 等ICCV 2021 · 被引用 4,909 次
- Tokens-to-Token ViT: Training Vision Transformers from Scratch on ImageNetLi Yuan, Yunpeng Chen, Tao Wang, Weihao Yu 等ICCV 2021 · 被引用 2,462 次
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