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TAPNext: Tracking Any Point (TAP) as Next Token Prediction
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Tracking Any Point (TAP) in a video is a challenging computer vision problem with many demonstrated applications in robotics, video editing, and 3D reconstruction. Existing methods for TAP rely heavily on complex tracking-specific inductive biases and heuristics, limiting their generality and potential for scaling. To address these challenges, we present TAPNext, a new approach that casts TAP as sequential masked token decoding. Our model is causal, tracks in a purely online fashion, and removes tracking-specific inductive biases. This enables TAPNext to run with minimal latency, and removes the temporal windowing required by many existing state of art trackers. Despite its simplicity, TAPNext achieves a new state-of-the-art tracking performance among both online and offline trackers. Finally, we present evidence that many widely used tracking heuristics emerge naturally in TAPNext through end-to-end training. The TAPNext model and code can be found at https://tap-next.github.io/.
Forward citations
Cited by 2 Pith papers
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AllTracker: Efficient Dense Point Tracking at High Resolution
A single model produces dense, high-resolution point tracks for every pixel by estimating long-range flow from a query frame to all other frames, achieving state-of-the-art accuracy on nine benchmarks.
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Track and Caption Any Motion: Open-Vocabulary Spatiotemporal Captioning via Trajectory-Conditioned Generation
A trajectory-conditioned retrieval system discovers multiple motion descriptions in videos without user queries and grounds them to point tracks, evaluated mainly on MeViS.
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