Study: Improvements in Pre-training Efficiency from 2019 to 2025 Mainly Come from Data
The study analyzed the contributions of data and model improvements to pre-training progress from 2019 to 2025. Conducted on a smaller scale, the research utilized publicly available model recipes and data corpora released each year, combining training at a computational scale of up to 1e19 FLOPs. The results indicated that under a 1e19 FLOPs computational budget, the efficiency gain from data improvements was 12.0 times, while model improvements contributed 3.7 times, with the data side gain being approximately 3.24 times that of the model side. The gains from data and model improvements are largely independent, with minimal interaction; under a linear model, the additive effects of both can explain 88% of the variance in OLMES scores. The model side evolved from GPT-2 to OLMo-2, covering optimizers, positional encoding, normalization, activation functions, and initialization, among others. On the data side, the corpus evolved from OpenWebText with about 9 billion tokens in 2019 to larger and more finely filtered datasets like UltraFineWeb by 2025.
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