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Optimal Power Control in Rayleigh-Fading Heterogeneous Wireless Networks

机译:瑞利衰落异构无线网络中的最佳功率控制

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Heterogeneous wireless networks provide varying degrees of network coverage in a multi-tier configuration in which low-powered small cells are used to enhance performance. Due to the ad-hoc deployment of small cells, optimal resource allocation is important to provision fairness and enhance energy efficiency. We first study the worst outage probability problem in Rayleigh-fading channels, and solve this nonconvex stochastic program using mathematical tools from nonlinear Perron-Frobenius theory. As a by-product, we solve an open problem of convergence for a previously proposed algorithm in the interference-limited case. We then address a total power minimization problem with outage specification constraints and its feasibility issue. We propose a dynamic algorithm that adapts the outage probability specification in a heterogeneous wireless network to minimize the total energy consumption and to simultaneously provide fairness guarantees in terms of the worst outage probability. Finally, we provide numerical evaluation on the performance of the algorithms and the effectiveness of deploying closed-access small cells in heterogeneous wireless networks to address the tradeoff between energy saving and feasibility of users satisfying their outage probability specifications.
机译:异构无线网络在多层配置中提供了不同程度的网络覆盖,在多层配置中,低功率小型小区用于增强性能。由于小型小区的临时部署,最佳的资源分配对于提供公平性和提高能源效率很重要。我们首先研究瑞利衰落信道中的最坏中断概率问题,然后使用非线性Perron-Frobenius理论的数学工具来解决此非凸随机程序。作为副产品,我们在干扰受限的情况下解决了先前提出的算法的开放收敛问题。然后,我们解决了具有停电规范约束的总功率最小化问题及其可行性问题。我们提出了一种动态算法,该算法可适应异构无线网络中的中断概率规范,以最大程度地降低总能耗,并同时根据最坏的中断概率提供公平性保证。最后,我们提供了算法性能的数值评估,以及在异构无线网络中部署封闭式接入小型蜂窝的有效性,以解决节能与满足用户中断概率指标的可行性之间的权衡问题。

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