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Joint Spectrum Sensing and Jamming Detection with Correlated Channels in Cognitive Radio Networks

机译:认知无线电网络中具有相关信道的联合频谱感知和干扰检测

摘要

In a cognitive radio (CR) scenario, we study the joint problem of spectrum sensing and jamming detection. Modelling the scenario as a multiple hypothesis testing problem, we analyse the probability of detection of the optimal detector in the sense of Neyman-Pearson theorem. We derive one exact form in terms of a series and a closed-form version. Moreover, we evaluate the asymptotic probability of detection, as it results in a simpler form to handle. In all of the above analysis, we consider the spatially correlated observation data. We further consider two practical scenarios where first we have no knowledge of the jammer's signal, and second where we have no knowledge of the noise power. We apply generalized likelihood ratio test in both of the cases. Simulation results confirm the accuracy of our asymptotic performance derivations.
机译:在认知无线电(CR)场景中,我们研究频谱感测和干扰检测的联合问题。将场景建模为多重假设检验问题,我们从内曼-皮尔森定理的意义上分析了最优检测器的检测概率。我们根据系列和封闭形式得出一种精确形式。此外,我们评估了检测的渐近概率,因为它可以简化处理形式。在以上所有分析中,我们考虑了空间相关的观测数据。我们进一步考虑两个实际情况,首先是我们不了解干扰信号,其次是我们不了解噪声功率。在这两种情况下,我们均采用广义似然比检验。仿真结果证实了我们渐近性能推导的准确性。

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