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首页> 外文期刊>Latin America Transactions, IEEE (Revista IEEE America Latina) >Efficient Wideband Spectrum sensing Based on Compressive Sensing and Multiband Signal Covariance
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Efficient Wideband Spectrum sensing Based on Compressive Sensing and Multiband Signal Covariance

机译:基于压缩感知和多频带信号协方差的高效宽带频谱感知

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摘要

This paper a novel and efficient wideband sensing algorithm based on compression and reconstruction of the covariance matrix of the signal from the covariance matrix of the acquired samples is proposed, it allows users to sense the cognitive spectrum without a priori knowledge of signal characteristics in the radio environment. Simulation results show that the proposed method allows estimating the spectral covariance matrix of signal and from it can perform efficiently the spectrum sensing, improving performance sensing according to the detection probability, false alarm and probability of failure detection, compared with spectrum sensing algorithms based on wideband energy detection, which works at rates above or equal to the Nyquist sampling rate.
机译:提出了一种基于压缩和重构采样样本协方差矩阵信号协方差矩阵的新颖高效宽带感知算法,使用户无需无线电先验知识即可感知认知频谱。环境。仿真结果表明,与基于宽带的频谱感知算法相比,该方法能够估计信号的频谱协方差矩阵,从而可以有效地进行频谱感知,并根据检测概率,误报和故障检测概率提高了感知性能。能量检测,其工作速率大于或等于奈奎斯特采样率。

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