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Subband Energy Based Reduced Complexity Spectrum Sensing Under Noise Uncertainty and Frequency-Selective Spectral Characteristics

机译:噪声不确定性和频率选择性频谱特性下基于子带能量的复杂度降低的频谱感知

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摘要

The present work proposes a subband energy detection method that performs efficiently under noise uncertainty (NU) and frequency-selective channels. The critical impact of detrimental modeling uncertainties, such as NU, is analytically quantified and it is shown that the introduced method is robust to both NU and frequency-selectivity conditions. This is also the case for eigenvalue based sensing techniques, in contrast to traditional energy detector based sensing. Connections of the subband energy based approach and existing eigenvalue based methods are established analytically, which leads to a novel reduced complexity processing technique based on the difference between maximum and minimum subband energies. The proposed method is capable of providing accurate and robust performance with low signal-to-noise ratios (SNR) in the presence of NU. Closed-form expressions are derived for the corresponding probability of false alarm and probability of detection under frequency selectivity due to the primary signal spectrum and/or the transmission channel. The validity of the offered expressions is justified through comparisons with respective results from computer simulations. The sensing performance is evaluated in different communication scenarios, with different frequency-selective channel models and primary user waveforms. The offered results indicate that the proposed methods provide quite significant savings in complexity, e.g., 78% reduction in the considered example case, while also improving the detection performance at low SNRs and in the presence of NU.
机译:本工作提出了一种在噪声不确定性(NU)和频率选择信道下有效执行的子带能量检测方法。通过分析量化了有害建模不确定性(例如NU)的关键影响,结果表明,所引入的方法对NU和频率选择性条件均具有鲁棒性。与传统的基于能量检测器的传感相比,基于特征值的传感技术也是如此。通过分析建立了基于子带能量的方法与现有基于特征值的方法之间的联系,这导致了一种基于最大和最小子带能量之间差异的,降低复杂性的新颖处理技术。所提出的方法能够在存在NU的情况下以低信噪比(SNR)提供准确而强大的性能。对于由于主信号频谱和/或传输信道而在频率选择性下对应的错误警报概率和检测概率,导出了封闭形式的表达式。通过与计算机模拟的相应结果进行比较,可以证明所提供表达式的有效性。在不同的通信场景中使用不同的频率选择通道模型和主要用户波形来评估传感性能。提供的结果表明,所提出的方法在复杂性方面提供了相当可观的节省,例如在所考虑的示例情况下降低了78%,同时还改善了低SNR和NU存在下的检测性能。

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