最优联盟结构生成的子空间聚焦搜索方法

Redha Taguelmimt, S. Aknine, Djamila Boukredera, Narayan Changder
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引用次数: 1

摘要

联盟结构生成是多智能体系统中的一个基本计算问题,即将一组智能体最优地划分为不相交的穷举联盟以实现社会福利最大化。本文提出了一种新的最优联盟结构生成算法。我们分析了如何在保证完全搜索的情况下单独搜索解空间的各个部分。本文介绍了一种利用动态规划和分支定界技术搜索整个解空间的新算法,该算法同时关注解子空间。通过对几种常见值分布的实验,我们表明划分搜索过程使我们的算法能够快速搜索解子空间,并且在几种值分布上优于当前最先进的算法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Subspace-Focused Search Method for Optimal Coalition Structure Generation
Coalition structure generation, i.e., the problem of optimally partitioning a set of agents into disjoint exhaustive coalitions to maximize social welfare, is a fundamental computational problem in multi-agent systems. In this paper, we provide a new algorithm for optimal coalition structure generation. We analyze how parts of the solution space can be searched individually with guarantees of fully searching them. We introduce a new algorithm that searches the entire solution space using dynamic programming with a branch-and-bound technique both focused on solution subspaces. With experiments over several common value distributions, we show that dividing the search process enables our algorithm to rapidly search the solution subspaces and outperform current state-of-the-art for several value distributions.
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