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On Optimal Cooperative Sensing with Energy Detection in Cognitive Radio

机译:认知无线电中带有能量检测的最佳合作感知

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摘要

In this paper, we propose an optimal cooperative sensing technique for cognitive radio to maximize sensing performance based on energy detection. In most spectrum sensing research, many cooperation methods have been proposed to overcome the sensitivity of energy detection so that both primary and secondary users are better off in terms of spectral efficiency. However, without assigning a proper sensing threshold to each sensing node, cooperation may not be effective unless the received average primary user signal-to-noise ratio (SNR) is identical. We show that equal threshold energy detection severely degrades sensing performance when cooperative sensing nodes experience diverse average SNRs, and it is not unusual for even single-node sensing to be better than cooperative sensing. To this end, based on the Neyman–Pearson criterion we formulate an optimization problem to maximize sensing performance by using optimized thresholds. Since this is a non-convex optimization problem, we provide a condition that convexifies the problem and thus serves as a sufficient optimality condition. We find that, perhaps surprisingly, in all practical cases one may consider this condition satisfied, and thus optimal sensing performance can be obtained. Through extensive simulations, we demonstrate that the proposed technique achieves a globally optimal solution, i.e., it maximizes the probability of detection under practical operating parameters such as the target probability of false alarm, different SNRs, and the number of cooperative sensing nodes.
机译:在本文中,我们提出了一种用于认知无线电的最佳协作感知技术,以基于能量检测最大化感知性能。在大多数频谱传感研究中,已经提出了许多合作方法来克服能量检测的敏感性,从而使主要用户和次要用户在频谱效率方面都更好。但是,如果没有为每个感测节点分配适当的感测阈值,则除非接收到的平均主要用户信噪比(SNR)相同,否则协作可能不会有效。我们显示,当协作感知节点经历各种平均SNR时,相等阈值能量检测会严重降低感知性能,即使单节点感知也要优于协作感知,这并非罕见。为此,基于Neyman-Pearson准则,我们提出了一个优化问题,以通过使用优化的阈值来最大化传感性能。由于这是一个非凸优化问题,因此我们提供了使该问题凸出的条件,因此可以作为充分的最优条件。我们发现,出乎意料的是,在所有实际情况下,人们都可能认为这一条件得到满足,因此可以获得最佳的传感性能。通过广泛的仿真,我们证明了所提出的技术实现了全局最佳解决方案,即,它在实际操作参数(例如错误警报的目标概率,不同的SNR和协作感测节点的数量)下最大化了检测的概率。

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