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SPM-Tracker: Series-Parallel Matching for Real-Time Visual Object Tracking

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The greatest challenge facing visual object tracking is the simultaneous requirements on robustness and discrimination power. In this paper, we propose a SiamFC-based tracker, named SPM-Tracker, to tackle this challenge. The basic idea is to address the two requirements in two separate matching stages. Robustness is strengthened in the coarse matching (CM) stage through generalized training while discrimination power is enhanced in the fine matching (FM) stage through a distance learning network. The two stages are connected in series as the input proposals of the FM stage are generated by the CM stage. They are also connected in parallel as the matching scores and box location refinements are fused to generate the final results. This innovative series-parallel structure takes advantage of both stages and results in superior performance. The proposed SPM-Tracker, running at 120fps on GPU, achieves an AUC of 0.687 on OTB-100 and an EAO of 0.434 on VOT-16, exceeding other real-time trackers by a notable margin.

Guangting Wang, Chong Luo, Zhiwei Xiong, Wenjun Zeng• 2019

Related benchmarks

TaskDatasetResultRank
Visual Object TrackingTrackingNet (test)
Normalized Precision (Pnorm)77.8
463
Visual Object TrackingLaSOT (test)
AUC47
446
Visual Object TrackingGOT-10k (test)--
408
Visual Object TrackingGOT-10k--
254
Visual Object TrackingUAV123 (test)
AUC59
188
Visual Object TrackingUAV123
AUC0.59
172
Visual Object TrackingNfS
AUC0.57
112
Visual Object TrackingVOT 2016
EAO43.4
79
Object TrackingOTB 2015 (test)
AUC0.67
63
Visual Object TrackingOTB 2015
AUC68.7
63
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