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Constant false alarm energy detection based on Markov transfer characteristics in cognitive radio

机译:基于认知无线电中马尔可夫传递特性的恒虚警能量检测

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Cognitive Radio is an emerging technology to improve the utilization of licensed spectrum. Spectrum sensing is one of the key tasks for cognitive radio. Previous research on spectrum sensing has not fully investigated the characteristics of the primary user. This paper analyzes the Markov transfer characteristics of the primary user, based on which the current state of the primary user is predicted to adjust the decision threshold and improve detection accuracy. Firstly, we illustrate the Markov transfer characteristics of the primary user. Secondly, we illustrate benefits of the characteristics and derive the upper bound of the detection probability we can achieve. Finally, we introduce a new algorithm to exploit the Markov transfer characteristics. Simulation results are given to verify the performance of the proposed algorithm in this paper.
机译:认知无线电是一种新兴技术,可以提高许可频谱的利用率。频谱感测是认知无线电的关键任务之一。先前对频谱感测的研究尚未完全研究主要用户的特征。本文分析了主要用户的马尔可夫转移特征,在此基础上预测了主要用户的当前状态,以调整决策阈值并提高检测精度。首先,我们说明了主要用户的马尔可夫转移特征。其次,我们说明了这些特性的好处,并得出了我们可以达到的检测概率的上限。最后,我们介绍了一种新的算法,以利用马尔可夫转移特性。仿真结果验证了所提算法的性能。

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