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St4RTrack: Simultaneous 4D Reconstruction and Tracking in the World

About

Dynamic 3D reconstruction and point tracking in videos are typically treated as separate tasks, despite their deep connection. We propose St4RTrack, a feed-forward framework that simultaneously reconstructs and tracks dynamic video content in a world coordinate frame from RGB inputs. This is achieved by predicting two appropriately defined pointmaps for a pair of frames captured at different moments. Specifically, we predict both pointmaps at the same moment, in the same world, capturing both static and dynamic scene geometry while maintaining 3D correspondences. Chaining these predictions through the video sequence with respect to a reference frame naturally computes long-range correspondences, effectively combining 3D reconstruction with 3D tracking. Unlike prior methods that rely heavily on 4D ground truth supervision, we employ a novel adaptation scheme based on a reprojection loss. We establish a new extensive benchmark for world-frame reconstruction and tracking, demonstrating the effectiveness and efficiency of our unified, data-driven framework. Our code, model, and benchmark will be released.

Haiwen Feng, Junyi Zhang, Qianqian Wang, Yufei Ye, Pengcheng Yu, Michael J. Black, Trevor Darrell, Angjoo Kanazawa• 2025

Related benchmarks

TaskDatasetResultRank
3D Scene Reconstruction7-Scenes (test)
Accuracy0.24
27
Sparse Point TrackingPanoptic Studio (PStudio) TAPVid-3D
APD74.05
14
3D ReconstructionNRGBD (test)
Acc24.1
12
Dense TrackingKubric
EPE3.465
11
Sparse Point TrackingPointOdyssey (PO) (test)
APD67.95
11
Sparse Point TrackingDynamic Replica (DR) (test)
APD78.36
11
World Coordinate 3D ReconstructionPoint Odyssey
APD78.73
9
World Coordinate 3D ReconstructionTUM dynamics
APD83.42
9
Dense TrackingWaymo
EPE0.167
8
4D ReconstructionPointOdyssey
EPE P0(t1)0.143
8
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