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An Adaptive Spectrum-Sensing Algorithm for Cognitive Radio Networks based on the Sample Covariance Matrix

机译:基于示例协方差矩阵的认知无线网络自适应频谱感测算法

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摘要

A novel adaptive threshold spectrum sensing technique based on the covariance matrix of received signal samples is proposed. The adaptive threshold in terms of signal to noise ratio (SNR) and spectrum utilisation ratio of primary user is derived. It considers both the probability of detection and the probability false alarm to minimise the overall decision error probability. The energy- based spectrum sensing scheme shows high vulnerability under noise uncertainty and low SNR. The existing covariance-based spectrum sensing technique overcomes the noise uncertainty problem but its performance deteriorates under low SNR. The proposed covariance-based scheme effectively addresses the low SNR problem. The superior performance of this scheme over the existing covariance-based detection method is confirmed by the simulation results in terms of probability of detection, probability of error, and requirement of samples for reliable detection of spectrum.
机译:提出了一种基于接收信号样本协方差矩阵的新型自适应阈值频谱感测技术。导出信号到信噪比(SNR)和主要用户的频谱利用率方面的自适应阈值。它考虑了检测概率和概率误报,以最小化整体决策误差概率。基于能量的频谱传感方案显示噪声不确定度和低SNR下的高脆弱性。现有的基于协方差的频谱传感技术克服了噪声不确定性问题,但其性能在低SNR下恶化。拟议的基于协方差的方案有效地解决了低SNR问题。通过仿真结果在检测概率,误差概率和样品要求中可靠地检测频谱检测的概率来确认该方案对现有的基于协方差的检测方法的卓越性能。

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