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Author

Gyubin Han

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Preprint Jul 2026

Reward-Aware Population Scaling of Evolutionary Strategies in LLM Fine-Tuning

Using Evolutionary Strategies (ES) for fine-tuning large language models is attractive because it is memory-efficient, parallel, and compatible with black-box or discrete rewards. Yet its population-size conclusions conflict sharply: fine-tuning with cross-entropy (CE) reward succeeds with $N=1$, while binary-reward tr...

Sunghui Cho, Gyubin Han · 0 citations

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