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Cooperative Jarque-Bera Statistic Based Spectrum Sensing Using MIMO Decision Fusion

机译:基于合作Jarque-Bera统计的MIMO决策融合频谱感知

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Cognitive Radio (CR) is a novel promising approach proposed to ensure efficient spectrum utilization. It is the obvious solution to the spectral congestion problem. Spectrum sensing is the most essential functionality required for the practical implementation of cognitive radio networks. An efficient spectrum sensing method must detect very weak primary user signals while being sufficiently fast and low cost to implement. In this paper, the Jarque - Bera (JB) statistic based spectrum sensing is studied. It is a robust sensing method that has been found to outperform all the conventional methods. In this paper, this method is extended to a cooperative scenario with Multiple Input Multiple Output (MIMO) decision fusion. This paper specifically addresses the issue of deep fading in the channel between the CR users and the Fusion Center (FC), the Common Control Channel (CCC), by providing multiple antennas at the FC. Three channel-aware binary-decision fusion rules are presented and the simulation results show that the proposed technique improves the efficiency and reliability of the JB sensing method under worst channel conditions. Also, the effect of increasing the number of antennas at the FC is analyzed.
机译:认知无线电(CR)是一种新颖的有前途的方法,旨在确保有效地利用频谱。这是频谱拥塞问题的明显解决方案。频谱感测是认知无线电网络的实际实施所需的最基本功能。有效的频谱感测方法必须检测到非常弱的主要用户信号,同时又要足够快且实施成本低。本文研究了基于Jarque-Bera(JB)统计量的频谱感知。这是一种鲁棒的传感方法,已发现其性能优于所有常规方法。本文将这种方法扩展到具有多输入多输出(MIMO)决策融合的协作方案。本文通过在FC用户和融合中心(FC)的公共控制信道(CCC)之间提供多个天线,专门解决了该信道中的深度衰落问题。提出了三种信道感知的二进制决策融合规则,仿真结果表明,该技术提高了在恶劣信道条件下JB感知方法的效率和可靠性。此外,分析了增加FC处天线数量的影响。

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