Real time robust L1 tracker using accelerated proximal gradient approach
Recently sparse representation has been applied to visual tracker by modeling the target appearance using a sparse approximation over a template set, which leads to the so-called L1 trackers as it needs to solve an ℓ 1 norm related minimization problem for many times. While these L1 trackers showed...
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| Vydáno v: | 2012 IEEE Conference on Computer Vision and Pattern Recognition s. 1830 - 1837 |
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| Hlavní autoři: | , , , |
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| Jazyk: | angličtina |
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IEEE
01.06.2012
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| ISBN: | 9781467312264, 1467312266 |
| ISSN: | 1063-6919, 1063-6919 |
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| Abstract | Recently sparse representation has been applied to visual tracker by modeling the target appearance using a sparse approximation over a template set, which leads to the so-called L1 trackers as it needs to solve an ℓ 1 norm related minimization problem for many times. While these L1 trackers showed impressive tracking accuracies, they are very computationally demanding and the speed bottleneck is the solver to ℓ 1 norm minimizations. This paper aims at developing an L1 tracker that not only runs in real time but also enjoys better robustness than other L1 trackers. In our proposed L1 tracker, a new ℓ 1 norm related minimization model is proposed to improve the tracking accuracy by adding an ℓ 1 norm regularization on the coefficients associated with the trivial templates. Moreover, based on the accelerated proximal gradient approach, a very fast numerical solver is developed to solve the resulting ℓ 1 norm related minimization problem with guaranteed quadratic convergence. The great running time efficiency and tracking accuracy of the proposed tracker is validated with a comprehensive evaluation involving eight challenging sequences and five alternative state-of-the-art trackers. |
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| AbstractList | Recently sparse representation has been applied to visual tracker by modeling the target appearance using a sparse approximation over a template set, which leads to the so-called L1 trackers as it needs to solve an ℓ 1 norm related minimization problem for many times. While these L1 trackers showed impressive tracking accuracies, they are very computationally demanding and the speed bottleneck is the solver to ℓ 1 norm minimizations. This paper aims at developing an L1 tracker that not only runs in real time but also enjoys better robustness than other L1 trackers. In our proposed L1 tracker, a new ℓ 1 norm related minimization model is proposed to improve the tracking accuracy by adding an ℓ 1 norm regularization on the coefficients associated with the trivial templates. Moreover, based on the accelerated proximal gradient approach, a very fast numerical solver is developed to solve the resulting ℓ 1 norm related minimization problem with guaranteed quadratic convergence. The great running time efficiency and tracking accuracy of the proposed tracker is validated with a comprehensive evaluation involving eight challenging sequences and five alternative state-of-the-art trackers. |
| Author | Yi Wu Haibin Ling Hui Ji Chenglong Bao |
| Author_xml | – sequence: 1 surname: Chenglong Bao fullname: Chenglong Bao email: baochenglong@nus.edu.sg organization: Dept. of Math., Nat. Univ. of Singapore, Singapore, Singapore – sequence: 2 surname: Yi Wu fullname: Yi Wu email: wuyi@temple.edu organization: Dept. of Comput. & Inf. Sci., Temple Univ., Philadelphia, PA, USA – sequence: 3 surname: Haibin Ling fullname: Haibin Ling email: hbling@temple.edu organization: Dept. of Comput. & Inf. Sci., Temple Univ., Philadelphia, PA, USA – sequence: 4 surname: Hui Ji fullname: Hui Ji email: matjh@nus.edu.sg organization: Dept. of Math., Nat. Univ. of Singapore, Singapore, Singapore |
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| SubjectTerms | Accuracy Minimization Noise Real time systems Robustness Target tracking Visualization |
| Title | Real time robust L1 tracker using accelerated proximal gradient approach |
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