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Weight updating technique in spectrum sensing based on CAF shared diversity combining

机译:基于CAF共享分集组合的频谱感知权重更新技术

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This paper proposes weight updating techniques for spectrum sensing based on a cyclic autocorrelation function (CAF) shared diversity combining. We had reported that CAF shared diversity combining can improve the performance by the weight calculated from the time-averaged CAF value. However, the performance is degraded when the weight includes CAFs calculated from purely additive white Gaussian noise. To avoid this, this paper proposes the weight updating technique in which only the CAFs are employed to obtain the time-averaged CAF when it is judged that a primary user is present. This paper provides theoretical analysis results of the proposed technique. The proposed results show that the performance of signal detection can be improved as compared to the conventional technique.
机译:本文提出了一种基于循环自相关函数(CAF)共享分集组合的频谱更新权重更新技术。我们已经报告了CAF共享分集合并可以通过根据时间平均CAF值计算出的权重来提高性能。但是,当权重包含根据纯加性高斯白噪声计算得出的CAF时,性能会下降。为了避免这种情况,本文提出了一种权重更新技术,其中在判断主要用户时,仅使用CAF来获取时间平均CAF。本文提供了该技术的理论分析结果。所提出的结果表明,与传统技术相比,信号检测的性能得以提高。

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