Papers by Zhibiao Guo

    1 papers
    From Domains to Instances: Dual-Granularity Data Synthesis for LLM Unlearning (2026.findings-acl)

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    Challenge: Currently, the evaluation of unlearning is limited due to the lack of granularity in the model.
    Approach: They propose a framework for synthesizing high-quality forget sets that exploits the target model per se to elicit data that matches its internal knowledge distribution through seed-guided and adversarial prompting.
    Outcome: The proposed framework achieves a superior balance of relevance, diversity, and efficiency across benchmarks.

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