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Scaling Laws for Mixture Pretraining Under Data Constraints

arXiv cs.LG · 2026-05-14 Cached

This paper studies the trade-off between scarce target data and abundant generic data in mixture pretraining, finding that repetition is a key driver of performance and that mixture training tolerates 15-20 repetitions of target data. It introduces a repetition-aware scaling law to optimize mixture configurations under data constraints.

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