Papers with RLEdit

    1 papers
    HiEdit: Lifelong Model Editing with Hierarchical Reinforcement Learning (2026.acl-long)

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    Challenge: Existing approaches to lifelong model editing apply parameter perturbations to static and dense layers for all instances.
    Approach: They propose a hierarchical reinforcement learning framework that identifies the most knowledge-relevant layers for each editing instance.
    Outcome: The proposed framework boosts the performance of the competitive RLEdit by 8.48% with perturbing only half of the layers per edit.

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