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A Real-Valued Weighted Covariance-Based Detection Method for Cognitive Radio Networks With Correlated Multiple Antennas

机译:具有相关多天线的认知无线电网络的基于实值加权协方差的检测方法

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摘要

The weighted covariance-based detection (WCD) method for spectrum sensing (SS) can offer a reliable detection performance in the spatially correlated time-varying Rayleigh fading channel. However, it involves huge complex computations. As is well known, one complex multiplication requires two real additions and four real multiplications. To this end, we transfer the complex-valued SS problem into the real-valued SS problem and present a novel-reduced complexity WCD method in this letter, which is referred to as a real-valued WCD (RWCD) method. In particular, an asymptotic closed-form expression of the probability of detection is derived for the proposed RWCD method, which is intractable in the WCD method. Through the complexity analysis, the RWCD method can save nearly half of the computational complexity compared to the WCD method. Meanwhile, simulation results show that the proposed method achieves almost the same performance as that of the WCD method, and both outperform their competitors.
机译:频谱感测(SS)的基于加权协方差的检测(WCD)方法可以在空间相关的时变瑞利衰落信道中提供可靠的检测性能。但是,它涉及巨大的复杂计算。众所周知,一个复数乘法需要两个实数加法和四个实数乘法。为此,我们将复值SS问题转换为实值SS问题,并在本文中提出了一种新颖的,降低了复杂度的WCD方法,称为实值WCD(RWCD)方法。特别是,对于所提出的RWCD方法,得出了检测概率的渐近闭式表达式,这在WCD方法中很难处理。通过复杂度分析,与WCD方法相比,RWCD方法可以节省近一半的计算复杂度。同时,仿真结果表明,所提出的方法与WCD方法具有几乎相同的性能,并且均优于竞争对手。

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