Papers › TrajectoryFormer: 3D Object Tracking Transformer with Predictive Trajectory Hypotheses

TrajectoryFormer: 3D Object Tracking Transformer with Predictive Trajectory Hypotheses

9 Jun 2023ICCV 2023 1arXiv:2306.05888archive 2025-07-28

Xuesong Chen, Shaoshuai Shi, Chao Zhang, Benjin Zhu, Qiang Wang, Ka Chun Cheung, Simon See, Hongsheng Li

3D multi-object tracking (MOT) is vital for many applications including autonomous driving vehicles and service robots. With the commonly used tracking-by-detection paradigm, 3D MOT has made important progress in recent years. However, these methods only use the detection boxes of the current frame to obtain trajectory-box association results, which makes it impossible for the tracker to recover objects missed by the detector. In this paper, we present TrajectoryFormer, a novel point-cloud-based 3D MOT framework. To recover the missed object by detector, we generates multiple trajectory hypotheses with hybrid candidate boxes, including temporally predicted boxes and current-frame detection boxes, for trajectory-box association. The predicted boxes can propagate object's history trajectory information to the current frame and thus the network can tolerate short-term miss detection of the tracked objects. We combine long-term object motion feature and short-term object appearance feature to create per-hypothesis feature embedding, which reduces the computational overhead for spatial-temporal encoding. Additionally, we introduce a Global-Local Interaction Module to conduct information interaction among all hypotheses and models their spatial relations, leading to accurate estimation of hypotheses. Our TrajectoryFormer achieves state-of-the-art performance on the Waymo 3D MOT benchmarks. Code is available at https://github.com/poodarchu/EFG .

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convert_basic_c2_names poodarchu/EFG/efg/utils/d2_model_loading.py official repository ran Apache-2.0 (permissive) · e8526a516b4f9206 · report
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Tasks

3D Multi-Object Tracking3D Object TrackingAutonomous DrivingMulti-Object TrackingObjectObject Tracking

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