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October 3, 20250 citationsOpen Access

DARTer: Dynamic Adaptive Representation Tracker for Nighttime UAV Tracking

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XLXuzhao LiXLXuchen LiSHShiyu Hu

Key Points

  • DARTer balances tracking accuracy and efficiency for nighttime UAV applications, leading to superior performance.
  • Extensive experiments on nighttime UAV tracking benchmarks reveal DARTer's effectiveness against state-of-the-art methods.
  • The model employs a Dynamic Feature Blender to fuse multi-perspective features, enhancing representation robustness.
  • Reduction of redundant computations is achieved via a Dynamic Feature Activator, streamlining the training process.

Abstract

Nighttime UAV tracking presents significant challenges due to extreme illumination variations and viewpoint changes, which severely degrade tracking performance. Existing approaches either rely on light enhancers with high computational costs or introduce redundant domain adaptation mechanisms, failing to fully utilize the dynamic features in varying perspectives. To address these issues, we propose DARTer (Dynamic Adaptive Representation Tracker), an end-to-end tracking framework designed for nighttime UAV scenarios. DARTer leverages a Dynamic Feature Blender (DFB) to effectively fuse multi-perspective nighttime features from static and dynamic templates, enhancing representation robustness. Meanwhile, a Dynamic Feature Activator (DFA) adaptively activates Vision Transformer layers based on extracted features, significantly improving efficiency by reducing redundant computations. Our model eliminates the need for complex multi-task loss functions, enabling a streamlined training process. Extensive experiments on multiple nighttime UAV tracking benchmarks demonstrate the superiority of DARTer over state-of-the-art trackers. These results confirm that DARTer effectively balances tracking accuracy and efficiency, making it a promising solution for real-world nighttime UAV tracking applications.

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Cite This Study

Li et al. (2025) studied this question.

synapsesocial.com/papers/68e03501f0e39f13e7fa37e1https://doi.org/10.48550/arxiv.2505.00752
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