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One-Shot Imitation under Mismatched Execution

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arxiv 2409.06615 v6 pith:UDMZI2OI submitted 2024-09-10 cs.RO cs.AIcs.LG

classification cs.ROcs.AIcs.LG
keywords humanrhymedemonstrationschallengesdataexecutionlong-horizonmethods
verification ladder T0 review T1 audit T2 compute T3 formal
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Human demonstrations as prompts are a powerful way to program robots to do long-horizon manipulation tasks. However, translating these demonstrations into robot-executable actions presents significant challenges due to execution mismatches in movement styles and physical capabilities. Existing methods for human-robot translation either depend on paired data, which is infeasible to scale, or rely heavily on frame-level visual similarities that often break down in practice. To address these challenges, we propose RHyME, a novel framework that automatically pairs human and robot trajectories using sequence-level optimal transport cost functions. Given long-horizon robot demonstrations, RHyME synthesizes semantically equivalent human videos by retrieving and composing short-horizon human clips. This approach facilitates effective policy training without the need for paired data. RHyME successfully imitates a range of cross-embodiment demonstrators, both in simulation and with a real human hand, achieving over 50% increase in task success compared to previous methods. We release our code and datasets at https://portal-cornell.github.io/rhyme/.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. The One RING: a Robotic Indoor Navigation Generalist

    cs.RO 2024-12 conditional novelty 7.0 of 10

    A simulation-trained policy that randomizes robot body and camera configurations generalizes zero-shot to real robots it has never seen.

  2. DenseMatcher: Learning 3D Semantic Correspondence for Category-Level Manipulation from a Single Demo

    cs.RO 2024-12 conditional novelty 6.0 of 10

    DenseMatcher combines 2D image features with a 3D neural network and functional maps to compute dense semantic correspondences between textured 3D objects, enabling single-demo cross-category robot manipulation.

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