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Optimal resource allocation in fetmocell networks based on Markov modeling of interferers’ activity

机译:基于干扰者活动的马尔可夫模型的fetmocell网络中的最佳资源分配

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摘要

Femtocell networks offer a series of advantages with respect to conventional cellular networks. However, a potential massive deployment of femto-access points (FAPs) poses a big challenge in terms of interference management, which requires proper radio resource allocation techniques. In this article, we propose alternative optimal power/bit allocation strategies over a time-frequency frame based on a statistical modeling of the interference activity. Given the lack of knowledge of the interference activity, we assume a Bayesian approach that provides the optimal allocation, conditioned to periodic spectrum sensing, and estimation of the interference activity statistical parameters. We consider first a single FAP accessing the radio channel in the presence of a dynamical interference environment. Then, we extend the formulation to a multi-FAP scenario, where nearby FAP’s react to the strategies of the other FAP’s, still within a dynamical interference scenario. The multi-user case is first approached using a strategic non-cooperative game formulation. Then, we propose a coordination game based on the introduction of a pricing mechanism that exploits the backhaul link to enable the exchange of parameters (prices) among FAP’s.
机译:毫微微蜂窝网络相对于常规蜂窝网络具有一系列优点。然而,毫微微接入点(FAP)的潜在大规模部署在干扰管理方面提出了巨大的挑战,这需要适当的无线电资源分配技术。在本文中,我们基于干扰活动的统计模型,提出了在时频框架上的替代最佳功率/比特分配策略。鉴于对干扰活动的了解不足,我们假设采用贝叶斯方法,该方法可提供最佳分配,以周期频谱感应为条件以及干扰活动统计参数的估计。我们首先考虑存在动态干扰环境的单个FAP访问无线电信道。然后,我们将公式扩展到多FAP方案,在该方案中,附近的FAP对其他FAP的策略做出反应,但仍处于动态干扰方案中。首先使用战略性非合作游戏公式处理多用户案例。然后,我们在引入定价机制的基础上提出一种协调博弈,该定价机制利用回程链路来实现FAP之间的参数(价格)交换。

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