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首页> 外文期刊>Wireless Communications, IEEE Transactions on >Joint Power and Admission Control for Ad-Hoc and Cognitive Underlay Networks: Convex Approximation and Distributed Implementation
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Joint Power and Admission Control for Ad-Hoc and Cognitive Underlay Networks: Convex Approximation and Distributed Implementation

机译:Ad-Hoc和认知底层网络的联合功率和准入控制:凸近似和分布式实现

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摘要

Power control is important in interference-limited cellular, ad-hoc, and cognitive underlay networks, when the objective is to ensure a certain quality of service to each connection. Power control has been extensively studied in this context, including distributed algorithms that are particularly appealing in ad-hoc and cognitive settings. A long-standing issue is that the power control problem may be infeasible, thus requiring appropriate admission control. The power and admission control parts of the problem are tightly coupled, but the joint optimization problem is NP-hard. We begin with a convenient reformulation which enables a disciplined convex approximation approach. This leads to a centralized approximate solution that is numerically shown to outperform the prior art, and even yield close to optimal results in certain cases - at affordable complexity. The issue of imperfect channel state information is also considered. A distributed implementation is then developed, which alternates between distributed approximation and distributed deflation - reaching consensus on a user to drop, when needed. Both phases require only local communication and computation, yielding a relatively lightweight distributed algorithm with the same performance as its centralized counterpart.
机译:当目标是确保每个连接的服务质量时,功率控制在受干扰限制的蜂窝,自组织和认知底层网络中很重要。在这种情况下,对功率控制进行了广泛的研究,包括在即席和认知环境中特别有吸引力的分布式算法。一个长期存在的问题是功率控制问题可能不可行,因此需要适当的准入控制。问题的电源和准入控制部分紧密耦合,但是联合优化问题很难解决。我们从方便的重新制定开始,该重新制定使规则的凸近似方法成为可能。这导致了集中式近似解决方案,其在数值上胜过现有技术,甚至在某些情况下甚至可以以可承受的复杂性获得接近最佳结果的结果。还考虑了信道状态信息不完善的问题。然后开发一种分布式实现,该实现在分布式近似和分布式放气之间交替-在需要时就用户放弃达成共识。这两个阶段都只需要本地通信和计算,从而产生了一种相对轻量的分布式算法,其性能与集中式算法相同。

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