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Optimal Joint Spatial-Temporal Diversity for Spectrum Sensing in Cognitive Radio Networks

机译:认知无线电网络频谱感应的最佳关节空间多样性

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摘要

Spectrum sensing is a critical and challenging issue in cognitive radio networks. Prior research has demonstrated that using spatial diversity or temporal diversity can lead to more efficient spectrum sensing. Based on Neyman-Pearson criterion, this paper derives a novel spectrum sensing algorithm which exploits spatial diversity among multiple cognitive sensors and temporal diversity among consecutive time slots jointly. The numerical results not only verify the improvement of the sensing performance comparing with singular (spatial or temporal) diversity is applied, but also show the reduction of sensing overhead in low signal-noise-ratio (SNR) regime.
机译:频谱感测是认知无线电网络中的一个关键和挑战性问题。先前的研究表明,使用空间分集或时间多样性可以导致更有效的频谱感测。基于Neyman-Pearson标准,本文得出了一种新颖的频谱传感算法,该谱传感算法利用了多种认知传感器之间的空间分集和连续时隙之间的时间分集。数值结果不仅验证了与奇异(空间或时间)相比的传感性能的改善,而且还显示了低信噪比(SNR)制度的感测开销的减少。

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