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An Improved Optimal Linear Weighted Cooperative Spectrum Sensing Algorithm for Cognitive Radio Sensor Networks

机译:认知无线电传感器网络的一种改进的最优线性加权合作频谱感知算法

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In order to improve the sensing accuracy of the Cognitive Radio Sensor Networks and reduce the interference to the primary user, this paper proposes an improved optimal linear weighted cooperative spectrum sensing scheme on the assumption that the report channel is not ideal. Through mathematical modeling, the spectrum sensing problem is ultimately converted into a constrained nonconvex optimization problem, and the chaotic harmony search (CHS) algorithm is to be used to find the optimal weighting vector value. The simulation results show that the proposed linear cooperative spectrum detection scheme based on the CHS algorithm has better performance than HS, SFLA, EGC, MRC, and MDC algorithm. In addition, the influence of local noise power, report channel noise power, and report channel gain on the performance of the algorithm is analyzed by simulation. The results show that local noise power has greater impact on the sensing performance.
机译:为了提高认知无线电传感器网络的检测精度并减少对主要用户的干扰,在报告信道不理想的前提下,提出了一种改进的最优线性加权合作频谱感知方案。通过数学建模,将频谱感测问题最终转换为约束非凸优化问题,并将使用混沌和声搜索(CHS)算法来找到最佳加权矢量值。仿真结果表明,基于CHS算法的线性协作频谱检测方案具有优于HS,SFLA,EGC,MRC和MDC算法的性能。另外,通过仿真分析了局部噪声功率,报告信道噪声功率和报告信道增益对算法性能的影响。结果表明,局部噪声功率对传感性能影响更大。

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