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The Improved Adaptive Silence Period Algorithm over Time-Variant Channels in the Cognitive Radio System

机译:认知无线电系统中时变信道上的改进自适应沉默周期算法

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In the field of cognitive radio spectrum sensing, the adaptive silence period management mechanism (ASPM) has improved the problem of the low time-resource utilization rate of the traditional silence period management mechanism (TSPM). However, in the case of the low signal-to-noise ratio (SNR), the ASPM algorithm will increase the probability of missed detection for the primary user (PU). Focusing on this problem, this paper proposes an improved adaptive silence period management (IA-SPM) algorithm which can adaptively adjust the sensing parameters of the current period in combination with the feedback information from the data communication with the sensing results of the previous period. The feedback information in the channel is achieved with frequency resources rather than time resources in order to adapt to the parameter change in the time-varying channel. The Monte Carlo simulation results show that the detection probability of the IA-SPM is 10–15% higher than that of the ASPM under low SNR conditions.
机译:在认知无线电频谱感测领域,自适应静默期管理机制(ASPM)改善了传统静默期管理机制(TSPM)的时间资源利用率低的问题。但是,在低信噪比(SNR)的情况下,ASPM算法将增加主要用户(PU)错过检测的可能性。针对这一问题,本文提出了一种改进的自适应静默周期管理算法,该算法可以结合来自数据通信的反馈信息和前一周期的感知结果,自适应地调整当前周期的感知参数。信道中的反馈信息是通过频率资源而不是时间资源来实现的,以适应时变信道中的参数变化。蒙特卡罗模拟结果表明,在低信噪比条件下,IA-SPM的检测概率比ASPM的检测概率高10-15%。

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