Robust optimization of cognitive radio networks powered by energy harvesting

Shimin Gong, Lingjie Duan, Ping Wang
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引用次数: 13

Abstract

We consider a cognitive radio network, where primary users (PUs) share their spectrum with energy harvesting (EH) enabled secondary users (SUs), conditioned on a limited SUs' interference at PU receivers. Due to the lack of information exchange between SUs and PUs, the SU-PU interference channels are subject to uncertainty in channel estimation. Besides channel uncertainty, SUs' EH profile is also subject to spatial and temporal variations, which enforce an energy causality constraint on SUs' transmit power control and affect SUs' interference at PU receivers. Considering both the channel and EH uncertainties, we propose a robust design for SUs' power control to maximize SUs' throughput performance. Our robust design targets at the worst-case interference constraint to provide a robust protection for PUs, while guarantees a transmission probability to reflect SUs' minimum QoS requirements. To make the non-convex throughput maximization problem tractable, we develop a convex approximation for each robust constraint and successfully design a successive approximation approach that converges to the global optimum of the throughput objective. Simulations show that SUs will change transmission strategies according to PUs' sensitivity to interference, and we also exploit the impact of SUs' EH profile (e.g., mean, variance, and correlation) on SUs' power control.
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基于能量收集的认知无线网络鲁棒优化
我们考虑了一个认知无线电网络,其中主用户(PU)与支持能量收集(EH)的辅助用户(su)共享其频谱,条件是su对PU接收器的干扰有限。由于SU-PU之间缺乏信息交换,SU-PU之间的干扰通道在信道估计中存在不确定性。除了信道的不确定性外,微源的EH分布也受到时空变化的影响,这对微源的发射功率控制施加了能量因果约束,并影响微源对PU接收器的干扰。考虑到通道和EH的不确定性,我们提出了一种稳健的su功率控制设计,以最大化su的吞吐量性能。我们的鲁棒设计以最坏干扰约束为目标,为pu提供鲁棒保护,同时保证传输概率反映su的最低QoS要求。为了使非凸吞吐量最大化问题易于处理,我们对每个鲁棒约束建立了一个凸逼近,并成功地设计了一个收敛到吞吐量目标全局最优的逐次逼近方法。仿真结果表明,微单元将根据微单元对干扰的敏感性改变传输策略,并利用微单元的EH分布(如均值、方差和相关性)对微单元功率控制的影响。
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