Papers by Jun HU

    1 papers
    OntoGuard: Enforcing Action Admissibility for LLM Agents in Complex Interactive Environments (2026.findings-acl)

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    Challenge: Existing approaches to large language models (LLMs) are limited by their ability to enforce environmental and behavioral admissibility.
    Approach: They propose an ontological framework to guard LLM agents by enforcing environmental and behavioral admissibility.
    Outcome: Experiments on ScienceWorld and VirtualHome show that OntoGuard can enforce environmental and behavioral admissibility while preventing invalid actions.

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