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Strategy Adaptation in Large Language Model Werewolf Agents

Fuya Nakamori
Yin Jou Huang
Fei Cheng
Main:3 Pages
3 Figures
Bibliography:1 Pages
12 Tables
Appendix:3 Pages
Abstract

This study proposes a method to improve the performance of Werewolf agents by switching between predefined strategies based on the attitudes of other players and the context of conversations. While prior works of Werewolf agents using prompt engineering have employed methods where effective strategies are implicitly defined, they cannot adapt to changing situations. In this research, we propose a method that explicitly selects an appropriate strategy based on the game context and the estimated roles of other players. We compare the strategy adaptation Werewolf agents with baseline agents using implicit or fixed strategies and verify the effectiveness of our proposed method.

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