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EPO: Explicit Policy Optimization for Strategic Reasoning in LLMs via Reinforcement Learning

About

Large Language Models (LLMs) have shown impressive reasoning capabilities in well-defined problems with clear solutions, such as mathematics and coding. However, they still struggle with complex real-world scenarios like business negotiations, which require strategic reasoning-an ability to navigate dynamic environments and align long-term goals amidst uncertainty. Existing methods for strategic reasoning face challenges in adaptability, scalability, and transferring strategies to new contexts. To address these issues, we propose explicit policy optimization (EPO) for strategic reasoning, featuring an LLM that provides strategies in open-ended action space and can be plugged into arbitrary LLM agents to motivate goal-directed behavior. To improve adaptability and policy transferability, we train the strategic reasoning model via multi-turn reinforcement learning (RL),utilizing process rewards and iterative self-play. Experiments across social and physical domains demonstrate EPO's ability of long-term goal alignment through enhanced strategic reasoning, achieving state-of-the-art performance on social dialogue and web navigation tasks. Our findings reveal various collaborative reasoning mechanisms emergent in EPO and its effectiveness in generating novel strategies, underscoring its potential for strategic reasoning in real-world applications. Code and data are available at https://github.com/AlibabaResearch/DAMO-ConvAI/tree/main/EPO.

Xiaoqian Liu, Ke Wang, Yongbin Li, Yuchuan Wu, Wentao Ma, Aobo Kong, Fei Huang, Jianbin Jiao, Junge Zhang• 2025

Related benchmarks

TaskDatasetResultRank
Social Interaction EvaluationSOTOPIA GPT-4o-as-Partner
Goal Score8.41
24
Social Interaction EvaluationSOTOPIA-Hard GPT-4o-as-Partner
Goal Score6.91
24
Social Interaction EvaluationSOTOPIA-Hard (Self-Play)
GOAL Score6.82
24
Social Interaction EvaluationSOTOPIA (Self-Play)
Goal Score8.09
24
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