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ViCoS Lab

Authors

Alan Lukežič, PhD
Alan Lukežič, PhD
Tomas Vojir
Tomas Vojir
Luka Čehovin Zajc, PhD
Luka Čehovin Zajc, PhD
Jiri Matas
Jiri Matas
Matej Kristan, PhD
Matej Kristan, PhD

Links

  •   GitHub repository
  •   Document

Tags

tracking

Discriminative Correlation Filter Tracker with Channel and Spatial Reliability

Alan Lukežič, Tomas Vojir, Luka Čehovin Zajc, Jiri Matas and Matej Kristan
International Journal of Computer Vision, Springer, 2018,

Short-term tracking is an open and challenging problem for which discriminative correlation filters (DCF) have shown excellent performance. We introduce the channel and spatial reliability concepts to DCF tracking and provide a learning algorithm for its efficient and seamless integration in the filter update and the tracking process. The spatial reliability map adjusts the filter support to the part of the object suitable for tracking. This both allows to enlarge the search region and improves tracking of non-rectangular objects. Reliability scores reflect channel-wise quality of the learned filters and are used as feature weighting coefficients in localization. Experimentally, with only two simple standard feature sets, HoGs and Colornames, the novel CSR-DCF method – DCF with Channel and Spatial Reliability – achieves state-of-the-art results on VOT 2016, VOT 2015 and OTB100. The CSR-DCF runs close to real-time on a CPU.

Faculty of Computer and Information Science

Visual Cognitive Systems Laboratory

University of Ljubljana

Faculty of Computer and Information Science

Večna pot 113
SI-1000 Ljubljana
Slovenia
Tel.: +386 1 479 8245