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An Adaptive Energy Detection Scheme with Real-Time Noise Variance Estimation

机译:具有实时噪声方差估计的自适应能量检测方案

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Energy detection-based spectrum sensing techniques are ideally suited for power-constrained cognitive radio applications because of their lower computational complexity compared to feature detection techniques. However, their detection performance is dependent on multiple factors like accuracy of noise variance estimation and signal-to-noise ratio (SNR). Many variations of energy detection techniques have been proposed to address these challenges; however, they achieve the desired detection accuracy at the cost of increased computational complexity. This restricts the use of enhanced energy detection schemes in power-constrained applications such as aeronautical communication. In this paper, an adaptive low-complexity energy detection scheme is proposed for spectrum sensing in an L-band Digital Aeronautical Communication System (LDACS) at lower SNR levels. Our scheme uses a real-time noise variance estimation technique using autocorrelation which is induced by the cyclic prefix property in LDACS signals. The proposed technique does not incur dedicated hardware blocks for noise variance estimation, leading to an efficient hardware implementation of the scheme without significant resource overheads. The simulation studies of the proposed scheme show that the desired accuracy (90% detection accuracy with only 10% of false alarms) can be achieved even at -16.5 dB SNR, significantly lowering the SNR wall over existing energy detection schemes.
机译:基于能量检测的频谱感测技术非常适用于功率约束的认知无线电应用,因为与特征检测技术相比,其计算复杂性较低。然而,它们的检测性能取决于噪声方差估计和信噪比(SNR)的多种因素。已经提出了能量检测技术的许多变化来解决这些挑战;然而,它们以增加的计算复杂性成本达到所需的检测精度。这限制了在诸如航空通信之类的功率受限应用中使用增强的能量检测方案。在本文中,提出了一种在较低SNR水平的L波段数字航空通信系统(LDAC)中的光谱感测的自适应低复杂度能量检测方案。我们的方案使用使用自相关的自相关的实时噪声方差估计技术,该技术由LDACS信号中的循环前缀属性引起。所提出的技术不会产生专用的硬件块,用于噪声方差估计,导致方案的有效硬件实现而无需显着资源开销。所提出的方案的仿真研究表明,即使在-16.5dB的SNR,也可以实现所需的精度(仅为10%的误报的检测精度),显着降低了现有的能量检测方案上的SNR墙壁。

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