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Feasibly efficient cooperative spectrum sensing scheme based on Cholesky decomposition of the correlation matrix

机译:基于相关矩阵的Cholesky分解的可行高效协作频谱感知方案

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Cooperative spectrum sensing, proposed to improve the performance of spectrum sensing in cognitive radio systems where there are multiple secondary users who can cooperatively detect the presence of one primary user, is receiving significant attention. However, few cooperative sensing algorithms take the correlation among the received primary user signals into account. A feasibly efficient cooperative spectrum sensing scheme based on Cholesky decomposition of the correlation matrix of the received signals is proposed. The ratio of the maximum eigenvalue to the minimum eigenvalue of the matrix obtained by Cholesky decomposition is used to construct the test statistic. Analytical approximations for the false alarm probability and decision threshold are derived using a moment matching method. The new scheme is in the category of blind cooperative spectrum sensing schemes requiring neither information about the primary user signal nor the channel nor the noise power. The new scheme can work better than the existing eigenvalue-based cooperative spectrum sensing methods in some conditions, and it has lower complexity.
机译:为改善认知无线电系统中频谱感知的性能而提出的合作频谱感知技术受到了广泛关注,在认知无线电系统中,有多个次要用户可以合作检测一个主要用户的存在。然而,很少有协作感测算法将接收到的主要用户信号之间的相关性考虑在内。提出了一种基于Cholesky分解接收信号相关矩阵的高效协作频谱感知方案。通过Cholesky分解获得的矩阵的最大特征值与最小特征值之比用于构建检验统计量。使用时刻匹配方法得出虚警概率和决策阈值的解析近似值。该新方案属于盲协作频谱感测方案的范畴,该方案既不需要有关主要用户信号的信息,也不需要信道或噪声功率。在某些情况下,新方案可以比现有的基于特征值的协作频谱感知方法更好地工作,并且具有较低的复杂度。

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