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2025 | OriginalPaper | Chapter

Tracking Meets LoRA: Faster Training, Larger Model, Stronger Performance

Authors : Liting Lin, Heng Fan, Zhipeng Zhang, Yaowei Wang, Yong Xu, Haibin Ling

Published in: Computer Vision – ECCV 2024

Publisher: Springer Nature Switzerland

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Abstract

The chapter 'Tracking Meets LoRA: Faster Training, Larger Model, Stronger Performance' delves into the application of Parameter-Efficient Fine-Tuning (PEFT) methods, specifically Low-Rank Adaptation (LoRA), to enhance the efficiency and performance of visual tracking models. It addresses the resource-intensive nature of Transformer-based tracking models and introduces two effective designs to adapt pre-trained models for tracking. The proposed tracker, LoRAT, achieves state-of-the-art performance on multiple benchmarks while demonstrating the feasibility of training advanced tracking models with manageable resources. The chapter includes extensive experimental results and ablation studies, showcasing the effectiveness of LoRA in mitigating catastrophic forgetting during fine-tuning and highlighting the importance of careful design in adapting pre-trained models for specialized tasks.

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Appendix
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Metadata
Title
Tracking Meets LoRA: Faster Training, Larger Model, Stronger Performance
Authors
Liting Lin
Heng Fan
Zhipeng Zhang
Yaowei Wang
Yong Xu
Haibin Ling
Copyright Year
2025
DOI
https://doi.org/10.1007/978-3-031-73232-4_17

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