Dynamic Updates for Language Adaptation in Visual-Language Tracking
Xiaohai Li, Bineng Zhong, Qihua Liang, Zhiyi Mo, Jian Nong, Shuxiang Song
摘要
The consistency between the semantic information provided by the multi-modal reference and the tracked object is crucial for visual-language (VL) tracking. However, existing VL tracking frameworks rely on static multi-modal references to locate dynamic objects, which can lead to semantic discrepancies and reduce the robustness of the tracker. To address this issue, we propose a novel vision-language tracking framework, named DUTrack, which captures the latest state of the target by dynamically updating multimodal references to maintain consistency. Specifically, we introduce a Dynamic Language Update Module, which leverages a large language model to generate dynamic language descriptions for the object based on visual features and object category information. Then, we design a Dynamic Template Capture Module, which captures the regions in the image that highly match the dynamic language descriptions. Furthermore, to ensure the efficiency of description generation, we design an update strategy that assesses changes in target displacement, scale, and other factors to decide on updates. Finally, the dynamic template and language descriptions that record the latest state of the target are used to update the multi-modal references, providing more accurate reference information for subsequent inference and enhancing the robustness of the tracker. DUTrack achieves new state-of-the-art performance on five mainstream vision-language and two vision-only tracking benchmarks, including LaSOT, LaSOT ext , TNL2K, OTB99-Lang, MGIT, GOT-10K, and UAV123. Code and models are available at https://github.com/GXNU-ZhongLab/DUTrack .
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引用它的顶会 Paper9
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- MVLM: Template-Free Tracking via Vision-Language Margin Confidence and Memory-Gated TrackingDae-Hyeon Park, Mina Baek, Jeong-Hun Ha, Chan-Seop Park 等CVPR 2026
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- Beyond Detection: A Structure-Aware Framework for Scene Text TrackingChenmin Yu, Liu Yu, Daiqing Wu, Li gengluo 等ICML 2026
它引用的顶会 Paper21
- An Image is Worth 16x16 Words: Transformers for Image Recognition at ScaleAlexey Dosovitskiy, Lucas Beyer, Alexander Kolesnikov, Dirk Weissenborn 等ICLR 2021 · 被引用 21,477 次
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- BLIP: Bootstrapping Language-Image Pre-training for Unified Vision-Language Understanding and GenerationJunnan Li, Dongxu Li, Caiming Xiong, Steven C. H. HoiICML 2022 · 被引用 6,549 次
- Learning Spatio-Temporal Transformer for Visual TrackingBin Yan, Houwen Peng, Jianlong Fu, Dong Wang 等ICCV 2021 · 被引用 1,062 次
- Learning the Model Update for Siamese TrackersLichao Zhang, Abel Gonzalez-Garcia, Joost van de Weijer, Martin Danelljan 等ICCV 2019 · 被引用 371 次
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