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Distributed Power Control for Two-Tier Femtocell Networks with QoS Provisioning Based on Q-Learning

机译:基于Q学习的QoS配置的双层毫微微小区网络的分布式功率控制

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The explosive growth of mobile multimedia services has caused tremendous network traffic in wireless networks and a great part of the multimedia services are delay-sensitive. Therefore, it is important to design efficient radio resource allocation algorithms to increase network capacity and guarantee the delay QoS. In this paper, we study the power control problem in the downlink of two-tier femtocell networks with the consideration of the delay QoS provisioning. Specifically, we introduce the effective capacity (EC) as the network performance measure instead of the Shannon capacity to provide the statistical delay QoS provisioning. Then, the optimization problem is modeled as a non- cooperative game and the existence of Nash Equilibriums (NE) is investigated. However, in order to enhance the self-organization capacity of femtocells, based on non-cooperative game, we employ a Q-learning framework in which all of the femtocell base stations (FBSs) are considered as agents to achieve power allocation. Then a distributed Q-learning-based power control algorithm is proposed to make femtocell users (FUs) gain maximum EC. Numerical results show that the proposed algorithm can not only maintain the delay requirements of the delay-sensitive services, but also has a good convergence performance.
机译:移动式多媒体服务的爆炸性增长导致无线网络中的巨大网络流量,多媒体服务的大部分是延时敏感的。因此,重要的是设计有效的无线电资源分配算法,以提高网络容量并保证延迟QoS。在本文中,我们在考虑延迟QoS配置中研究了双层毫微微小区网络的下行链路中的功率控制问题。具体地,我们将有效的容量(EC)介绍为网络性能测量而不是Shannon容量提供统计延迟QoS供应。然后,优化问题被建模为非合作游戏,并研究了纳什均衡(NE)的存在。然而,为了提高毫微微小区的自组织能力,基于非协作游戏,我们采用了一个Q学习框架,其中所有毫微微蜂窝基站(FBS)被认为是实现功率分配的代理。然后提出了一种基于分布式的基于Q学习的功率控制算法来使毫微微小区用户(FUS)增益最大EC。数值结果表明,该算法不仅可以保持延时敏感服务的延迟要求,而且还具有良好的收敛性能。

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