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首页> 外文期刊>Wireless Communications Letters, IEEE >A Locally Optimal Soft Linear-Quadratic Scheme for CR Systems in Shadowing Environments
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A Locally Optimal Soft Linear-Quadratic Scheme for CR Systems in Shadowing Environments

机译:阴影环境下CR系统的局部最优软线性二次方案

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摘要

In this letter, we analyze the problem of detecting spectrum holes in cognitive radio systems under the Neyman–Pearson scenario. We consider that a group of unlicensed users use noncoherent energy detectors to sense the radio signal and design a soft locally optimal linear-quadratic statistic based on the deflection coefficient. Each unlicensed user transmits the processed data to a central entity, where the decision about the presence or not of licensed users is made. Using the method of Monte Carlo, we show that the proposed statistic outperforms previous ones available in the literature in a wide range of shadow-fading scenarios and it is robust against parameters errors.
机译:在这封信中,我们分析了在Neyman–Pearson情景下在认知无线电系统中检测频谱空洞的问题。我们认为,一组未经许可的用户使用非相干能量检测器来感测无线电信号,并基于偏转系数来设计软局部最优线性二次统计量。每个未许可用户将处理后的数据传输到中央实体,在该中心实体中确定是否存在许可用户。使用蒙特卡洛方法,我们证明了所提出的统计量在广泛的阴影衰落场景下优于文献中已有的统计量,并且对于参数错误具有鲁棒性。

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