Object Tracking Benchmark
Nanjing University of Information Science and Technology · Hanyang University · +1 more institution
Abstract
Object tracking has been one of the most important and active research areas in the field of computer vision. A large number of tracking algorithms have been proposed in recent years with demonstrated success. However, the set of sequences used for evaluation is often not sufficient or is sometimes biased for certain types of algorithms. Many datasets do not have common ground-truth object positions or extents, and this makes comparisons among the reported quantitative results difficult. In addition, the initial conditions or parameters of the evaluated tracking algorithms are not the same, and thus, the quantitative results reported in literature are incomparable or sometimes contradictory. To address these…
Citation impact
- FWCI
- 158.52
- Percentile
- 100%
- References
- 118
Authors
3- YWYi WuCorresponding
Nanjing University of Information Science and Technology
- JLJongwoo Lim
Hanyang University
- MYMing–Hsuan Yang
University of California, Merced
Topics & keywords
- Computer science
- BitTorrent tracker
- Benchmark (surveying)
- Initialization
- Video tracking
- Ground truth
- Artificial intelligence
- Field (mathematics)
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