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Optimization of cooperative spectrum sensing with sensing user selection in cognitive radio networks

机译:通过感知无线电网络中的感知用户选择来优化协作频谱感知

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摘要

Cooperative spectrum sensing (CSS) can improve the spectrum sensing performance by introducing spatial diversity in cognitive radio networks (CRNs). However, such cooperation also introduces the delay for reporting sensing data. Conventional cooperation scheme assumes that the cooperative secondary users (SUs) report their local sensing data to the fusion center sequentially. This causes the reporting delay to increase with the number of the cooperative SUs, and ultimately affects the performance of CSS. In this article, we consider the reporting delay and formulate the optimization problem of CSS with sensing user selection to maximize the average throughput of the CRN in both the additive white Gaussian noise (AWGN) environment and the Rayleigh fading environment. It is shown that selecting all the SUs within the CRN to cooperate might not achieve the maximal average throughput. In particular, for the AWGN environment, the sensing user selection scheme is equivalent to selecting the optimal number of cooperative SUs due to all the SUs having the same instantaneous detection signal-to-noise ratio (SNR). For the Rayleigh fading environment, the maximal average throughput is achieved by selecting a certain number of cooperative SUs with the highest instantaneous detection SNRs to cooperate. Finally, computer simulations are presented to demonstrate that the average throughput of the CRN can be maximized through the optimization.
机译:通过在认知无线电网络(CRN)中引入空间分集,协作频谱感测(CSS)可以提高频谱感测性能。然而,这种合作也引入了报告感测数据的延迟。传统合作方案假设合作二级用户(SU)依次向融合中心报告其本地感知数据。这导致报告延迟随协作SU的数量而增加,并最终影响CSS的性能。在本文中,我们考虑了报告延迟,并通过感知用户选择来制定CSS的优化问题,以在加性高斯白噪声(AWGN)环境和瑞利衰落环境中最大化CRN的平均吞吐量。结果表明,选择CRN中的所有SU进行协作可能无法实现最大平均吞吐量。特别地,对于AWGN环境,由于所有SU具有相同的瞬时检测信噪比(SNR),因此感测用户选择方案等效于选择协作SU的最佳数量。对于瑞利衰落环境,通过选择一定数量的具有最高瞬时检测SNR的协作SU进行协作,可以实现最大的平均吞吐量。最后,通过计算机仿真来证明可以通过优化使CRN的平均吞吐量最大化。

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