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Perplexity-Aware Data Scaling Law: Perplexity Landscapes Predict Performance for Continual Pre-training

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Continual Pre-training (CPT) serves as a fundamental approach for adapting foundation models to domain-specific applications. Scaling laws for pre-training define a power-law relationship between dataset size and the test loss of an LLM. However, the marginal gains from simply increasing data for CPT diminish rapidly, yielding suboptimal data utilization and inefficient training. To address this challenge, we propose a novel perplexity-aware data scaling law to establish a predictive relationship between the perplexity landscape of domain-specific data and the test loss. Our approach leverages the perplexity derived from the pre-trained model on domain data as a proxy for estimating the knowledge gap, effectively quantifying the informational perplexity landscape of candidate training samples. By fitting this scaling law across diverse perplexity regimes, we enable adaptive selection of high-utility data subsets, prioritizing content that maximizes knowledge absorption while minimizing redundancy and noise. Extensive experiments demonstrate that our method consistently identifies near-optimal training subsets and achieves superior performance on both medical and general-domain benchmarks.

Lei Liu, Hao Zhu, Yue Shen, Zhixuan Chu, Jian Wang, Jinjie Gu, Kui Ren• 2025

Related benchmarks

TaskDatasetResultRank
Medical Question AnsweringMedMCQA
Accuracy68.28
253
General Knowledge EvaluationMMMLU
MMMLU General Knowledge Accuracy82.25
29
Question AnsweringPubMedQA
Accuracy77.4
9
General KnowledgeCMMLU
Accuracy84.78
9
Medical Knowledge EvaluationDiagnosisArena
Accuracy61.11
5
Medical Knowledge EvaluationGPQA Med
Accuracy63.16
5
Medical Knowledge EvaluationNEJMQA
Accuracy66.14
5
Medical Knowledge EvaluationMedQA USMLE
Accuracy73.61
5
Medical Knowledge EvaluationMMLU Med
Accuracy82.11
5
General Knowledge EvaluationCEval
Accuracy85.44
5
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