Making Higher Order MOT Scalable: An Efficient Approximate Solver for Lifted Disjoint Paths
Andrea Hornáková, Timo Kaiser, Paul Swoboda, Michal Rolínek, Bodo Rosenhahn, Roberto Henschel
摘要
We present an efficient approximate message passing solver for the lifted disjoint paths problem (LDP), a natural but NP-hard model for multiple object tracking (MOT). Our tracker scales to very large instances that come from long and crowded MOT sequences. Our approximate solver enables us to process the MOT15/16/17 benchmarks without sacrificing solution quality and allows for solving MOT20, which has been out of reach up to now for LDP solvers due to its size and complexity. On all these four standard MOT benchmarks we achieve performance comparable or better than current state-of-the-art methods including a tracker based on an optimal LDP solver.
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引用它的顶会 Paper8
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它引用的顶会 Paper6
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- Lifted Disjoint Paths with Application in Multiple Object TrackingAndrea Hornáková, Roberto Henschel, Bodo Rosenhahn, Paul SwobodaICML 2020 · 被引用 131 次
- Learning a Neural Solver for Multiple Object TrackingGuillem Brasó, Laura Leal-TaixéCVPR 2020
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