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A robust threshold optimization approach for energy detection based spectrum sensing with noise uncertainty

机译:一种基于噪声不确定性的能量检测频谱感测的鲁棒阈值优化方法

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With noise power uncertainty in energy detection, fixed threshold is no longer suitable. Reviewing the conventional robust statistic approach (RSA), we show that RSA does not provide optimal threshold for primary user (PU) detection. In this paper, we develop a novel threshold optimization approach based on sensing statistical model. Adopting linear integral approximation (LIA), we present new closed form expressions for the detector's performances. Relying on constant false alarm rate (CFAR) principle and dichotomy iteration, we can obtain the optimized threshold, which is more noise-environment adaptive. Simulation results show that the detection probability can be significant improved using the optimized threshold, and the overall performance satisfies the robustness requirements.
机译:通过能量检测中的噪声功率不确定性,固定阈值不再适用。审查传统的强大统计方法(RSA),我们显示RSA不为主用户(PU)检测提供最佳阈值。在本文中,我们开发了一种基于感测统计模型的新型阈值优化方法。采用线性积分近似(LIA),我们为探测器的性能提出了新的封闭形式表达式。依靠持续的误报率(CFAR)原则和二分法迭代,我们可以获得优化的阈值,这是更多的噪声环境自适应。仿真结果表明,使用优化阈值,检测概率可以显着改善,整体性能满足鲁棒性要求。

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