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Towards a Better Match in Siamese Network Based Visual Object Tracker

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Recently, Siamese network based trackers have received tremendous interest for their fast tracking speed and high performance. Despite the great success, this tracking framework still suffers from several limitations. First, it cannot properly handle large object rotation. Second, tracking gets easily distracted when the background contains salient objects. In this paper, we propose two simple yet effective mechanisms, namely angle estimation and spatial masking, to address these issues. The objective is to extract more representative features so that a better match can be obtained between the same object from different frames. The resulting tracker, named Siam-BM, not only significantly improves the tracking performance, but more importantly maintains the realtime capability. Evaluations on the VOT2017 dataset show that Siam-BM achieves an EAO of 0.335, which makes it the best-performing realtime tracker to date.

Anfeng He, Chong Luo, Xinmei Tian, Wenjun Zeng• 2018

Related benchmarks

TaskDatasetResultRank
Visual Object TrackingOTB100 (test)
AUC0.662
41
Single Object TrackingVOT 2018 (test)
EAO0.337
26
Visual Object TrackingOTB 2013 (test)
AUC68.6
16
Visual Object TrackingVOT 2018 (public)
EAO0.325
16
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