Papers by Michael Santacroce

    1 papers
    Adapting LLM Agents with Universal Communication Feedback (2025.findings-naacl)

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    Challenge: Recent advances in large language models (LLMs) have demonstrated potential for LLM agents.
    Approach: They propose a universal buffer and iterative pipeline to store feedback and itersative pipelines to enable LLM agents to explore and update their policy in an environment.
    Outcome: The proposed approach outperforms supervised instruction fine-tuning baselines on four datasets.

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