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Performance of Cooperative Eigenvalue Spectrum Sensing with a Realistic Receiver Model under Impulsive Noise

机译:逼真的接收器模型在脉冲噪声下的协同特征值频谱感知性能

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In this paper we present a unified comparison of the performance of four detection techniques for centralized data-fusion cooperative spectrum sensing in cognitive radio networks under impulsive noise, namely, the eigenvalue-based generalized likelihood ratio test (GLRT), the maximum-minimum eigenvalue detection (MMED), the maximum eigenvalue detection (MED), and the energy detection (ED). We consider two system models: an implementation-oriented model that includes the most relevant signal processing tasks realized by a real cognitive radio receiver, and the theoretical model conventionally adopted in the literature. We show that under the implementation-oriented model, GLRT and MMED are quite robust under impulsive noise, whereas the performance of MED and ED is drastically degraded. We also show that performance under the conventional model can be too pessimistic if impulsive noise is present, whereas it can be too optimistic in the absence of this impairment. We also discuss the fact that impulsive noise is not such a severe problem when we take into account the more realistic implementation-oriented model.
机译:在本文中,我们对脉冲噪声下认知无线电网络中集中式数据融合协作频谱感知的四种检测技术的性能进行了统一比较,即基于特征值的广义似然比检验(GLRT),最大-最小特征值检测(MMED),最大特征值检测(MED)和能量检测(ED)。我们考虑两个系统模型:一个面向实现的模型,包括一个真正的认知无线电接收器实现的最相关的信号处理任务,以及文献中通常采用的理论模型。我们表明,在面向实施的模型下,GLRT和MMED在脉冲噪声下相当鲁棒,而MED和ED的性能则大大降低。我们还表明,如果存在脉冲噪声,则常规模型下的性能可能过于悲观,而在没有这种损害的情况下性能可能过于乐观。当我们考虑更现实的面向实现的模型时,我们还将讨论脉冲噪声并不是一个严重的问题。

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