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DAL -- A Deep Depth-aware Long-term Tracker

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The best RGBD trackers provide high accuracy but are slow to run. On the other hand, the best RGB trackers are fast but clearly inferior on the RGBD datasets. In this work, we propose a deep depth-aware long-term tracker that achieves state-of-the-art RGBD tracking performance and is fast to run. We reformulate deep discriminative correlation filter (DCF) to embed the depth information into deep features. Moreover, the same depth-aware correlation filter is used for target re-detection. Comprehensive evaluations show that the proposed tracker achieves state-of-the-art performance on the Princeton RGBD, STC, and the newly-released CDTB benchmarks and runs 20 fps.

Yanlin Qian, Alan Luke\v{z}i\v{c}, Matej Kristan, Joni-Kristian K\"am\"ar\"ainen, Jiri Matas• 2019

Related benchmarks

TaskDatasetResultRank
RGB-D Object TrackingDepthTrack (test)
Precision51.2
181
Visual Object TrackingDepthTrack
Recall0.369
91
Visual Object TrackingARKitTrack (test)
Precision44.6
12
Visual Object TrackingCDTB
Precision62
12
RGB-D Object TrackingCDTB
Precision66.2
9
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