MUST: The First Dataset and Unified Framework for Multispectral UAV Single Object Tracking
Haolin Qin, Tingfa Xu, Tianhao Li, Zhenxiang Chen, Tao Feng, Jianan Li
摘要
UAV tracking faces significant challenges in real-world scenarios, such as small-size targets and occlusions, which limit the performance of RGB-based trackers. Multispectral images (MSI), which capture additional spectral information, offer a promising solution to these challenges. However, progress in this field has been hindered by the lack of relevant datasets. To address this gap, we introduce the first large-scale Multispectral UAV Single Object Tracking dataset (MUST), which includes 250 video sequences spanning diverse environments and challenges, providing a comprehensive data foundation for multispectral UAV tracking. We also propose a novel tracking framework, UNTrack, which encodes unified spectral, spatial, and temporal features from spectrum prompts, initial templates, and sequential searches. UNTrack employs an asymmetric transformer with a spectral background eliminate mechanism for optimal relationship modeling and an encoder that continuously updates the spectrum prompt to refine tracking, improving both accuracy and efficiency. Extensive experiments show that our proposed UNTrack outperforms stateof-the-art UAV trackers. We believe our dataset and framework will drive future research in this area. The dataset is available on https://github.com/q2479036243/MUST-Multispectral-UAV-Single-Object-Tracking.
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- Learning Discriminative Model Prediction for TrackingGoutam Bhat, Martin Danelljan, Luc Van Gool, Radu TimofteICCV 2019 · 被引用 1,294 次
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- Transforming Model Prediction for TrackingChristoph Mayer, Martin Danelljan, Goutam Bhat, Matthieu Paul 等CVPR 2022 · 被引用 399 次
- Visible-Thermal UAV Tracking: A Large-Scale Benchmark and New BaselinePengyu Zhang, Jie Zhao, Dong Wang, Huchuan Lu 等CVPR 2022 · 被引用 225 次
- Learn to Match: Automatic Matching Network Design for Visual TrackingZhipeng Zhang, Yihao Liu, Xiao Wang, Bing Li 等ICCV 2021 · 被引用 224 次
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