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Simple Diversity Combining Techniques for Cyclostationarity Detection Based Spectrum Sensing in Cognitive Radio Networks

机译:认知无线电网络中基于循环平稳度检测的简单分集组合技术

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This paper presents simple diversity combining techniques for cyclostationarity detection based spectrum sensing in cognitive radio networks. The presented techniques are based on maximum cyclic autocorrelation function (MCAS) techniques. The MCAS judges whether received signals include an orthogonal frequency division multiplexing (OFDM) signals or not, by comparing the peak and non-peak values of a cyclic autocorrelation function (CAF). The presented diversity techniques attempt to increase signal-to-noise ratio (SNR) of CAF which is composed of the peak and non-peak values of CAF. In the presented techniques, the CAF SNRs which obtained at some received antennas are combined whereas general diversity combining techniques combines some received signals. The presented results are compared with some conventional results, and computational and theoretical analysis results show that the presented techniques can improve the spectrum sensing performance.
机译:本文提出了用于认知无线电网络中基于循环平稳性检测的频谱感知的简单分集组合技术。提出的技术基于最大循环自相关函数(MCAS)技术。 MCAS通过比较循环自相关函数(CAF)的峰值和非峰值来判断接收到的信号是否包括正交频分复用(OFDM)信号。提出的分集技术试图增加CAF的信噪比(SNR),该信噪比由CAF的峰值和非峰值组成。在提出的技术中,对在某些接收天线处获得的CAF SNR进行组合,而一般的分集组合技术对某些接收信号进行组合。将给出的结果与一些常规结果进行比较,计算和理论分析结果表明,所提出的技术可以提高频谱感测性能。

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