基于纳什均衡和非平稳行为内后悔学习的分布式无线网络资源分配

Grit Monrat, W. Kumwilaisak, P. Saengudomlert
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摘要

提出了一种求解具有瓶颈的共享链路上分布式无线网络资源分配的迭代方法。我们提出了一个考虑传输比特率和功率效率之间权衡的效用函数。鉴于其他参与者的传递策略,每个参与者的效用函数为凹函数。其次,我们将资源分配问题描述为一个博弈问题,每个参与者在自己的权力约束下竞争使用网络资源。所有参与者利用改进的内部后悔学习算法寻找自己的传输策略,最终形成纳什均衡点。证明了该算法的收敛性和收敛速度。然后,我们研究了部分了解其他参与人策略下的分配资源配置结果。仿真显示了不同设置环境下的资源分配结果。
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Distributive wireless network resource allocation with nash equilibrium and internal-regret-learning of non-stationary actions
This paper presents an iterative method in solving distributive wireless network resource allocation at the shared link with bottleneck. We propose a utility function considering trade-off between transmission bit rate and power efficiency. Given other players' transmission strategies, the utility function of each player is a concave function. Next, we formulate resource allocation problem as a game, where each player compete to use network resource under its own power constraint. All players utilize the Modified Internal-Regret-Learning algorithm to find their own transmission strategies, which finally form a Nash equilibrium point. The convergence and rate of convergence of the proposed algorithm are proven. Then, we study the results of distributive resource allocation under partial knowledge of other players' strategies. Simulations are conveyed to show the results of resource allocation under various setup environments.
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