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license: cc-by-nc-4.0
datasets:
  - facebook/LAMP

馃挕LAMP: Localization Aware Multi-camera People Tracking in Metric 3D World

Project Page arXiv Video

CVPR 2026

Nan YangJulian StraubFan ZhangRichard NewcombeJakob EngelLingni Ma

Meta Reality Labs Research

LAMP teaser

LAMP tracks 3D human motion from egocentric multi-camera headsets via early disentanglement of observer and target motion. Using known device 6-DoF motion and calibration, 2D body keypoints from all cameras over a temporal window are lifted into a unified 3D world reference frame, and an end-to-end trained spatio-temporal transformer fits 3D human motion directly to this 3D ray cloud. This "lift-then-fit" approach achieves state-of-the-art results on monocular benchmarks while significantly outperforming baselines on the targeted egocentric setting.

Citation

@inproceedings{yang2026lamp,
  title     = {{LAMP}: Localization Aware Multi-camera People Tracking in Metric {3D} World},
  author    = {Yang, Nan and Straub, Julian and Zhang, Fan and Newcombe, Richard and Engel, Jakob and Ma, Lingni},
  booktitle = {Proceedings of the IEEE/CVF Conference on Computer Vision and Pattern Recognition (CVPR)},
  year      = {2026}
}