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Spectrum sensing algorithm based on sample variance in multi-antenna cognitive radio systems

机译:多天线认知无线电系统中基于样本方差的频谱感知算法

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The most significant feature that cognitive radio systems must include in order to operate properly is spectrum sensing. In this paper, we investigate the problem of designing accurate and efficient spectrum sensing algorithms in multi-antenna cognitive radio systems. Existing algorithms require an excessive number of sampling points to achieve the desired detection performance, and we address this issue by proposing a spectrum sensing algorithm based on sample variance that requires significantly fewer sampling points in multiple input multiple output (MIMO) scenarios. The proposed method uses the row vector of the sampling covariance matrix as the sample, and then uses the sample variance to construct the detection statistics. The judgment threshold is derived according to the false alarm probability. This algorithm makes full use of the relational structure of the signal, which allows it to reduce the number of sampling points while simultaneously enhancing the detection ability. Compared with existing algorithms, the proposed algorithm is more accurate and efficient. The superior performance of the proposed algorithm is demonstrated by Monte Carlo simulations in both Rayleigh and additive white Gaussian noise (AWGN) channels. These simulation results also show that the proposed algorithm has wider applicability than existing algorithms. (C) 2016 Elsevier GmbH. All rights reserved.
机译:认知无线电系统必须包括的最重要的功能是频谱感应。在本文中,我们研究了在多天线认知无线电系统中设计准确有效的频谱感应算法的问题。现有算法需要过多数量的采样点才能实现所需的检测性能,并且我们通过提出一种基于采样方差的频谱感测算法来解决此问题,该算法在多输入多输出(MIMO)场景中所需的采样点大大减少。该方法以采样协方差矩阵的行向量作为样本,然后利用样本方差构造检测统计量。根据误报概率推导出判断阈值。该算法充分利用了信号的关系结构,可以减少采样点的数量,同时提高检测能力。与现有算法相比,该算法更加准确,高效。蒙特卡罗仿真在瑞利和加性高斯白噪声(AWGN)信道中都证明了该算法的优越性能。这些仿真结果还表明,所提出的算法比现有算法具有更广泛的适用性。 (C)2016 Elsevier GmbH。版权所有。

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