cs.AI updates on arXiv.org 10月07日
隐藏游戏问题与高效后悔最小化算法
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本文研究一类策略空间大的游戏,探讨AI对齐和语言游戏中的挑战。提出隐藏游戏问题,通过设计高效后悔最小化算法,实现快速收敛到相关均衡,提升计算效率。

arXiv:2510.03845v1 Announce Type: new Abstract: This paper investigates a class of games with large strategy spaces, motivated by challenges in AI alignment and language games. We introduce the hidden game problem, where for each player, an unknown subset of strategies consistently yields higher rewards compared to the rest. The central question is whether efficient regret minimization algorithms can be designed to discover and exploit such hidden structures, leading to equilibrium in these subgames while maintaining rationality in general. We answer this question affirmatively by developing a composition of regret minimization techniques that achieve optimal external and swap regret bounds. Our approach ensures rapid convergence to correlated equilibria in hidden subgames, leveraging the hidden game structure for improved computational efficiency.

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隐藏游戏问题 后悔最小化算法 AI对齐 语言游戏
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