Papers with co-evolutionary dynamic

    1 papers
    Joint Optimization of Training Data and Policy in RLHF (2026.findings-acl)

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    Challenge: JODP optimizes policies on fixed training inputs, limiting the diversity of learning signals.
    Approach: They propose a framework where policy generates improved variants of training problems to enhance its own learning.
    Outcome: The proposed framework improves on safety alignment tasks by allowing 4B models to reach 8B model performance with less than 1% additional computational overhead.

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