Papers with consensus voting

    1 papers
    Routing with Generated Data: Annotation-Free LLM Skill Estimation and Expert Selection (2026.acl-long)

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    Challenge: Existing approaches typically assume access to ground-truth labeled data . Existing methods require a classifier to select models given an input .
    Approach: They propose a routing setting where routers are trained exclusively on generated queries and answers from LLMs.
    Outcome: The proposed router outperforms the best query-answer router by 4.6% absolute accuracy when trained on weak generator data.

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