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UMDATrack: Unified Multi-Domain Adaptive Tracking Under Adverse Weather Conditions

About

Visual object tracking has gained promising progress in past decades. Most of the existing approaches focus on learning target representation in well-conditioned daytime data, while for the unconstrained real-world scenarios with adverse weather conditions, e.g. nighttime or foggy environment, the tremendous domain shift leads to significant performance degradation. In this paper, we propose UMDATrack, which is capable of maintaining high-quality target state prediction under various adverse weather conditions within a unified domain adaptation framework. Specifically, we first use a controllable scenario generator to synthesize a small amount of unlabeled videos (less than 2% frames in source daytime datasets) in multiple weather conditions under the guidance of different text prompts. Afterwards, we design a simple yet effective domain-customized adapter (DCA), allowing the target objects' representation to rapidly adapt to various weather conditions without redundant model updating. Furthermore, to enhance the localization consistency between source and target domains, we propose a target-aware confidence alignment module (TCA) following optimal transport theorem. Extensive experiments demonstrate that UMDATrack can surpass existing advanced visual trackers and lead new state-of-the-art performance by a significant margin. Our code is available at https://github.com/Z-Z188/UMDATrack.

Siyuan Yao, Rui Zhu, Ziqi Wang, Wenqi Ren, Yanyang Yan, Xiaochun Cao• 2025

Related benchmarks

TaskDatasetResultRank
Visual TrackingAVisT
AUC60.5
50
Visual Object TrackingDTB70 Foggy
AUC66.21
21
Visual Object TrackingGOT-10k Foggy
AO66.6
21
Visual Object TrackingGOT-10k Dark
AO65.4
21
Visual Object TrackingDTB70 Dark
AUC66.07
21
Visual Object TrackingGOT-10k Rainy
AO68.5
21
Visual Object TrackingDTB70 Rainy
AUC66.75
21
Visual Object TrackingNAT 2021
AUC54.58
17
Visual Object TrackingUAVDark70
AUC60.05
17
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