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Computer Science > Robotics

arXiv:2603.26466 (cs)
[Submitted on 27 Mar 2026]

Title:Adapt as You Say: Online Interactive Bimanual Skill Adaptation via Human Language Feedback

Authors:Zhuo Li, Dianxi Li, Tao Teng, Quentin Rouxel, Zhipeng Dong, Dennis Hong, Darwin Caldwell, Fei Chen
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Abstract:Developing general-purpose robots capable of autonomously operating in human living environments requires the ability to adapt to continuously evolving task conditions. However, adapting high-dimensional coordinated bimanual skills to novel task variations at deployment remains a fundamental challenge. In this work, we present BiSAIL (Bimanual Skill Adaptation via Interactive Language), a novel framework that enables zero-shot online adaptation of offline-learned bimanual skills through interactive language feedback. The key idea of BiSAIL is to adopt a hierarchical reason-then-modulate paradigm, which first infers generalized adaptation objectives from multimodal task variations, and then adapts bimanual motions via diffusion modulation to achieve the inferred objectives. Extensive real-robot experiments across six bimanual tasks and two dual-arm platforms demonstrate that BiSAIL significantly outperforms existing methods in human-in-the-loop adaptability, task generalization and cross-embodiment scalability. This work enables the development of adaptive bimanual assistants that can be flexibly customized by non-expert users via intuitive verbal corrections. Experimental videos and code are available at this https URL.
Comments: 11 pages, 15 figures, submitted to IEEE TMECH
Subjects: Robotics (cs.RO)
Cite as: arXiv:2603.26466 [cs.RO]
  (or arXiv:2603.26466v1 [cs.RO] for this version)
  https://doi.org/10.48550/arXiv.2603.26466
arXiv-issued DOI via DataCite

Submission history

From: Zhuo Li [view email]
[v1] Fri, 27 Mar 2026 14:32:40 UTC (6,018 KB)
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