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Visual tracking via adaptive structural local sparse appearance model

Published: 16 June 2012 Publication History

Abstract

Sparse representation has been applied to visual tracking by finding the best candidate with minimal reconstruction error using target templates. However most sparse representation based trackers only consider the holistic representation and do not make full use of the sparse coefficients to discriminate between the target and the background, and hence may fail with more possibility when there is similar object or occlusion in the scene. In this paper we develop a simple yet robust tracking method based on the structural local sparse appearance model. This representation exploits both partial information and spatial information of the target based on a novel alignment-pooling method. The similarity obtained by pooling across the local patches helps not only locate the target more accurately but also handle occlusion. In addition, we employ a template update strategy which combines incremental subspace learning and sparse representation. This strategy adapts the template to the appearance change of the target with less possibility of drifting and reduces the influence of the occluded target template as well. Both qualitative and quantitative evaluations on challenging benchmark image sequences demonstrate that the proposed tracking algorithm performs favorably against several state-of-the-art methods.

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  • (2024)High-Order Multiple Kernelized Correlation Filter in Tensor for Visual TrackingProceedings of the International Conference on Computer Vision and Deep Learning10.1145/3653781.3653796(1-5)Online publication date: 19-Jan-2024
  • (2020)Online Filtering Training Samples for Robust Visual TrackingProceedings of the 28th ACM International Conference on Multimedia10.1145/3394171.3413930(1488-1496)Online publication date: 12-Oct-2020
  • (2020)Real-time visual tracking using complementary kernel support correlation filtersFrontiers of Computer Science: Selected Publications from Chinese Universities10.1007/s11704-018-8116-114:2(417-429)Online publication date: 1-Apr-2020
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  1. Visual tracking via adaptive structural local sparse appearance model

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      Published In

      cover image Guide Proceedings
      CVPR '12: Proceedings of the 2012 IEEE Conference on Computer Vision and Pattern Recognition (CVPR)
      June 2012
      3800 pages
      ISBN:9781467312264

      Publisher

      IEEE Computer Society

      United States

      Publication History

      Published: 16 June 2012

      Author Tags

      1. Adaptation models
      2. Dictionaries
      3. Mathematical model
      4. Robustness
      5. Target tracking
      6. Vectors
      7. Visualization

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      Cited By

      View all
      • (2024)High-Order Multiple Kernelized Correlation Filter in Tensor for Visual TrackingProceedings of the International Conference on Computer Vision and Deep Learning10.1145/3653781.3653796(1-5)Online publication date: 19-Jan-2024
      • (2020)Online Filtering Training Samples for Robust Visual TrackingProceedings of the 28th ACM International Conference on Multimedia10.1145/3394171.3413930(1488-1496)Online publication date: 12-Oct-2020
      • (2020)Real-time visual tracking using complementary kernel support correlation filtersFrontiers of Computer Science: Selected Publications from Chinese Universities10.1007/s11704-018-8116-114:2(417-429)Online publication date: 1-Apr-2020
      • (2020)A temporal sparse collaborative appearance model for visual trackingMultimedia Tools and Applications10.1007/s11042-020-08630-179:19-20(14103-14125)Online publication date: 1-May-2020
      • (2019)Robust Target Tracking Algorithm Based on Superpixel Visual Attention MechanismInternational Journal of Ambient Computing and Intelligence10.4018/IJACI.201904010110:2(1-17)Online publication date: 1-Apr-2019
      • (2019)Visual Tracking by Gated PixelCNN ModelProceedings of the 2019 3rd International Conference on Computer Science and Artificial Intelligence10.1145/3374587.3374615(165-170)Online publication date: 6-Dec-2019
      • (2019)Real-time Target Tracking Based on PCANet-CSK AlgorithmProceedings of the 2019 3rd International Conference on Computer Science and Artificial Intelligence10.1145/3374587.3374607(343-346)Online publication date: 6-Dec-2019
      • (2019)Human Body Tracking Method Based on Deep Learning Object DetectionProceedings of the 2nd International Conference on Computer Science and Software Engineering10.1145/3339363.3339390(114-118)Online publication date: 24-May-2019
      • (2019)Handcrafted and Deep TrackersACM Computing Surveys10.1145/330966552:2(1-44)Online publication date: 30-Apr-2019
      • (2019)Robust Structural Sparse TrackingIEEE Transactions on Pattern Analysis and Machine Intelligence10.1109/TPAMI.2018.279708241:2(473-486)Online publication date: 1-Feb-2019
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