AutoTrack: Towards High-Performance Visual Tracking for UAV With Automatic Spatio-Temporal Regularization
Yiming Li, Changhong Fu, Fangqiang Ding, Ziyuan Huang, Geng Lu
摘要
Most existing trackers based on discriminative correlation filters (DCF) try to introduce predefined regularization term to improve the learning of target objects, e.g., by suppressing background learning or by restricting change rate of correlation filters. However, predefined parameters introduce much effort in tuning them and they still fail to adapt to new situations that the designer did not think of. In this work, a novel approach is proposed to online automatically and adaptively learn spatio-temporal regularization term. Spatially local response map variation is introduced as spatial regularization to make DCF focus on the learning of trust-worthy parts of the object, and global response map variation determines the updating rate of the filter. Extensive experiments on four UAV benchmarks have proven the superiority of our method compared to the state-of-the-art CPU-and GPU-based trackers, with a speed of ∼60 frames per second running on a single CPU. Our tracker is additionally proposed to be applied in UAV localization. Considerable tests in the indoor practical scenarios have proven the effectiveness and versatility of our localization method. The code is available at https: //github.com/vision4robotics/AutoTrack .
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引用它的顶会 Paper19
- Learning Target Candidate Association to Keep Track of What Not to TrackChristoph Mayer, Martin Danelljan, Danda Pani Paudel, Luc Van GoolICCV 2021 · 被引用 356 次
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它引用的顶会 Paper3
- Learning Discriminative Model Prediction for TrackingGoutam Bhat, Martin Danelljan, Luc Van Gool, Radu TimofteICCV 2019 · 被引用 1,294 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
- Learning Aberrance Repressed Correlation Filters for Real-Time UAV TrackingZiyuan Huang, Changhong Fu, Yiming Li, Fuling Lin 等ICCV 2019 · 被引用 347 次
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