Assignment-Space-based Multi-Object Tracking and Segmentation
Anwesa Choudhuri, Girish Chowdhary, Alexander G. Schwing
摘要
Multi-object tracking and segmentation (MOTS) is important for understanding dynamic scenes in video data. Existing methods perform well on multi-object detection and segmentation for independent video frames, but tracking of objects over time remains a challenge. MOTS methods formulate tracking locally, i.e., frame-by-frame, leading to sub-optimal results. Classical global methods on tracking operate directly on object detections, which leads to a combinatorial growth in the detection space. In contrast, we formulate a global method for MOTS over the space of assignments rather than detections: First, we find all top-k assignments of objects detected and segmented between any two consecutive frames and develop a structured prediction formulation to score assignment sequences across any number of consecutive frames. We use dynamic programming to find the global optimizer of this formulation in polynomial time. Second, we connect objects which reappear after having been out of view for some time. For this we formulate an assignment problem. On the challenging KITTI-MOTS and MOTSChallenge datasets, this achieves state-of-the-art results among methods which don’t use depth data.
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引用它的顶会 Paper3
- Tracking Anything with Decoupled Video SegmentationHo Kei Cheng, Seoung Wug Oh, Brian L. Price, Alexander G. Schwing 等ICCV 2023 · 被引用 240 次
- OW-VISCapTor: Abstractors for Open-World Video Instance Segmentation and CaptioningAnwesa Choudhuri, Girish Chowdhary, Alexander G. SchwingNeurIPS 2024 · 被引用 7 次
- Context-Aware Relative Object Queries to Unify Video Instance and Panoptic SegmentationAnwesa Choudhuri, Girish Chowdhary, Alexander G. SchwingCVPR 2023
它引用的顶会 Paper4
- Tracking Without Bells and WhistlesPhilipp Bergmann, Tim Meinhardt, Laura Leal-TaixéICCV 2019 · 被引用 1,030 次
- Lifted Disjoint Paths with Application in Multiple Object TrackingAndrea Hornáková, Roberto Henschel, Bodo Rosenhahn, Paul SwobodaICML 2020 · 被引用 131 次
- VIP-DeepLab: Learning Visual Perception With Depth-Aware Video Panoptic SegmentationSiyuan Qiao, Yukun Zhu, Hartwig Adam, Alan L. Yuille 等CVPR 2021
- Learning a Neural Solver for Multiple Object TrackingGuillem Brasó, Laura Leal-TaixéCVPR 2020
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