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Cross-Layer Estimation and Control for Cognitive Radio: Exploiting Sparse Network Dynamics

机译:认知无线电的跨层估计和控制:利用稀疏网络动力学

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In this paper, a cross-layer framework to jointly optimize spectrum sensing and access in agile wireless networks is presented. A network of secondary users (SUs) accesses portions of the spectrum left unused by a network of licensed primary users (PUs). A central controller (CC) schedules the traffic of the SUs, based on distributed compressed measurements collected by the SUs. Sensing and access are jointly controlled to maximize the SU throughput, with constraints on PU throughput degradation and SU cost. The sparsity in the spectrum dynamics is exploited: leveraging a prior spectrum occupancy estimate, the CC needs to estimate only a residual uncertainty vector via sparse recovery techniques. The high complexity entailed by the POMDP formulation is reduced by a low-dimensional belief representation via minimization of the Kullback-Leibler divergence. It is proved that the optimization of spectrum sensing and access can be decoupled via dynamic programming. A partially myopic access strategy is proposed, proving that it allocates SU traffic to likely idle spectral bands. Simulation results show that this framework balances optimally the resources between spectrum sensing and data transmission. More in general, this framework defines sensing-scheduling schemes most informative for network control, yielding energy efficient resource utilization.
机译:本文提出了一种跨层框架,用于联合优化敏捷无线网络中的频谱感知和访问。二级用户(SU)网络访问许可的一级用户(PU)网络未使用的频谱部分。中央控制器(CC)根据SU收集的分布式压缩测量值来调度SU的流量。联合控制传感和访问以最大化SU吞吐量,同时限制PU吞吐量下降和SU成本。利用频谱动力学中的稀疏性:利用先前的频谱占用估计,CC只需通过稀疏恢复技术来估计残留的不确定性矢量。通过最小化Kullback-Leibler散度,低维信念表示降低了POMDP公式所带来的高复杂性。事实证明,频谱感知和接入的优化可以通过动态编程解耦。提出了一种部分近视的访问策略,证明了该策略将SU业务分配给可能的空闲频谱带。仿真结果表明,该框架在频谱感知和数据传输之间实现了资源的最佳平衡。更一般而言,此框架定义了对网络控制最有用的传感调度方案,从而产生了能源高效的资源利用。

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