Papers by Shidong Yang

    1 papers
    CoEvolve: Training LLM Agents via Agent-Data Mutual Evolution (2026.acl-long)

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    Challenge: Extensive experiments on AppWorld and BFCL demonstrate consistent and significant improvements over strong base models, yielding absolute gains of 19.43%, 15.58%, and 18.14%, respectively.
    Approach: They propose a framework that extracts feedback signals such as forgetting and uncertainty from rollout trajectories and utilizes them to guide LLM-based task synthesis.
    Outcome: Extensive experiments on AppWorld and BFCL show that the proposed framework improves over strong base models.

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