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LaGEA: Language Guided Embodied Agents for Robotic Manipulation

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Source: arXiv cs.ROPublish time unverified

arXiv:2509.23155v3 Announce Type: replace Abstract: Robotic manipulation benefits from foundation models that describe goals, but today's agents still lack a principled way to learn from their own mistakes. We ask whether natural language can serve as feedback, an error-reasoning signal that helps embodied agents diagnose what went wrong and correct course.

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