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Any-point Trajectory Modeling for Policy Learning. (arXiv:2401.00025v1 [cs.RO])

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Any-point Trajectory Modeling for Policy Learning. (arXiv:2401.00025v1 [cs.RO])

Learning from demonstration is a powerful method for teaching robots new skills, and more demonstration data often improves policy learning. However, the high cost of collecting demonstration data is a significant bottleneck. Videos, as a rich data source, contain knowledge of behaviors, physics, and semantics, but extracting control-specific information from them is challenging due to the lack of action labels. In this work, we introduce a novel framework, Any-point Trajectory Modeling (ATM), that utilizes video demonstrations by pre-training a trajectory model to predict future trajectories of arbitrary points within a video frame. Once trained, these trajectories provide detailed control guidance,

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