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一种基于极值特征值之差的全盲多天线频谱感知算法
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A Total Blind Multi-antenna Spectrum Sensing Algorithm Based on Difference of Extreme Eigenvalues
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    摘要:

    提出了一种新的基于接收信号取样协方差矩阵(SCM)极值特征值之差的多天线频谱感知算法BDDEE,其以SCM的最大最小特征值之差与接收信号平均能量之比作为感知判决量,在检测过程中摆脱了对噪声方差的依赖,且无须使用主用户信号及无线传输信道等相关参数.在此基础上,基于有限维Wishart随机矩阵有序特征值分布的相关结果,从理论上提出了一种精确的虚警概率和判决门限的分析和计算方法;更进一步,考虑到次级用户计算和存储资源的限制,利用高维Wishart随机矩阵中极值特征值的分布理论,通过融合最大和最小特征值极限分布所对应的判决门限,提出了一种低计算复杂度的判决门限计算方法.综合考虑检测性能和虚警性能指标来看,新算法比经典的CAV、MME和DMME算法具有更优的感知性能,在样本数目有限的条件下能获得更加稳健的检测结果,数值仿真结果证明了所提BDDEE算法的有效性.

    Abstract:

    A new BDDEE (Blind Detector based on Difference of Extreme Eigenvalues) multi-antenna spectrum sensing algorithm based on the difference between the extreme eigenvalues of the received signal sample covariance matrix (SCM) is proposed. It uses the ratio of the difference between the maximum and minimum eigenvalues of the SCM and the average energy of the received signal as the sensing decision. The proposed BDDEE algorithm breaks away from the dependence on the noise variance in the detection process and does not need to use the relevant parameters such as the primary user signal and the wireless transmission channel. On this basis, using the results of the ordered eigenvalue distribution of the finite-dimensional Wishart random matrix, an accurate analysis and calculation method for false-alarm probability and decision threshold is proposed theoretically. Furthermore, considering the limitation of computing and storage resources of secondary users, a decision threshold calculation method with low computational complexity is proposed by combining the decision threshold corresponding to the maximum and minimum eigenvalue limiting distribution by using the distribution theory of limiting eigenvalues in the high-dimensional Wishart random matrix. From the comprehensive consideration of detection performance and false-alarm performance, the proposed BDDEE algorithm has better sensing performance than the traditional CAV (Covariance Absolute Value), MME (Maximum Minimum Eigenvalue) and DMME (Difference between the Maximum and the Minimum Eigenvalues) algorithms, and can obtain more robust detection results under the condition of limited sample number, which is verified by the various numerical simulation results.

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LEI Kejun, YANG Xi?,XIANG Changqing, WANG Xuming, TIAN Kun, TAN Zhewen, XIA Shunhui.一种基于极值特征值之差的全盲多天线频谱感知算法[J].湖南大学学报:自然科学版,2023,(12):76~85

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  • 在线发布日期: 2024-01-02
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