Arxiv Papers

[short] JudgeLM : Fine-tuned Large Language Models are Scalable Judges


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The paper proposes a method called JudgeLM to evaluate large language models (LLMs) in open-ended scenarios. They fine-tune LLMs as scalable judges and introduce techniques to address biases. JudgeLM achieves state-of-the-art performance and high agreement with human judges.


https://arxiv.org/abs//2310.17631


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Arxiv PapersBy Igor Melnyk

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