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SEED-GRPO: Semantic Entropy Enhanced GRPO for Uncertainty-Aware Policy Optimization

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Large language models (LLMs) exhibit varying levels of confidence across input prompts (questions): some lead to consistent, semantically similar answers, while others yield diverse or contradictory outputs. This variation reflects LLM's uncertainty about the input prompt, a signal of how confidently the model understands a given problem. However, vanilla Group Relative Policy Optimization (GRPO) treats all prompts equally during policy updates, ignoring this important information about the model's knowledge boundaries. To address this limitation, we propose SEED-GRPO (Semantic Entropy EnhanceD GRPO), which explicitly measures LLMs' uncertainty of the input prompts semantic entropy. Semantic entropy measures the diversity of meaning in multiple generated answers given a prompt and uses this to modulate the magnitude of policy updates. This uncertainty-aware training mechanism enables dynamic adjustment of policy update magnitudes based on question uncertainty. It allows more conservative updates on high-uncertainty questions while maintaining the original learning signal on confident ones. Experimental results on five mathematical reasoning benchmarks (AIME24 56.7, AMC 68.7, MATH 83.4, Minerva 34.2, and OlympiadBench 48.0) demonstrate that SEED-GRPO achieves new state-of-the-art performance in average accuracy, validating the effectiveness of uncertainty-aware policy optimization.

Minghan Chen, Guikun Chen, Wenguan Wang, Yi Yang• 2025

Related benchmarks

TaskDatasetResultRank
Mathematical ReasoningMATH 500
Top-1 Accuracy80
384
Mathematical ReasoningMinerva
Pass@1 Accuracy32.4
289
Mathematical ReasoningMinerva Math
Accuracy38.2
233
Mathematical ReasoningMATH 500
Accuracy75.4
221
Mathematical ReasoningOlympiadBench
Accuracy38.5
213
Mathematical ReasoningAMC23
PASS@1 Accuracy71
207
Mathematical ReasoningAIME 25
Pass@1 Accuracy6
178
Mathematical ReasoningOlympiad
Accuracy0.363
134
Mathematical ReasoningAIME 24
Pass@1 Accuracy23.3
128
Mathematical ReasoningOlympiadBench
Accuracy41.3
36
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