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Adaptive Spectrum Detecting Algorithm in Cognitive Radio

机译:认知无线电自适应频谱检测算法

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Cognitive radio (CR) network can make an opportunistic access of spectrum licensed to a primary user (PU). The CR must perform spectrum sensing to detect active PU, thereby avoiding interfering with it. This chapter focuses on adaptively spectrum sensing, so that negative impacts to the performance of the CR network are minimized when CR users experience both stochastic data arrival and time-varying channel. Since the frequency of the spectrum sensing has a directly impact on system throughput and the probability of collision between the PU and CR user, the PU activity is modeled based on the characteristic analysis of the PU spectrum utilization. Based on that, an efficient adaptive sensing algorithm that takes into account the system stability, collision, and throughput is proposed. The CR users can make a balance between them by utilizing a "periodic control factor" which controls the adaptive adjustment of the spectrum sensing frequency. The simulation results indicate that the proposed algorithm has excellent performance on collision probability and throughput compared with conventional periodic spectrum sensing scheme. Meanwhile, it is shown that the proposed algorithm has low implementation complexity for practical applications.
机译:认知无线电(CR)网络可以使许可的频谱访问到主要用户(PU)。 CR必须执行光谱感测以检测有源PU,从而避免干扰它。本章侧重于自适应频谱感测,因此当CR用户经历随机数据到达和时变通道时,对CR网络的性能的负面影响最小化。由于频谱感测的频率直接影响了系统吞吐量和PU和CR用户之间的碰撞概率,因此基于PU频谱利用的特征分析来建模PU活动。基于此,提出了一种考虑系统稳定性,冲突和吞吐量的有效的自适应感应算法。 CR用户可以利用“周期性控制因子”在它们之间进行平衡,该“周期性控制因子”控制频谱感测频率的自适应调整。仿真结果表明,与传统的周期性频谱感测方案相比,该算法对碰撞概率和吞吐量具有出色的性能。同时,示出该算法的实现复杂性低,实际应用。

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