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首页> 外文期刊>Wireless personal communications: An Internaional Journal >Using NLMS Algorithms in Cyclostationary-Based Spectrum Sensing for Cognitive Radio Networks
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Using NLMS Algorithms in Cyclostationary-Based Spectrum Sensing for Cognitive Radio Networks

机译:基于Cyckstationary的基于Cyckstationary的Cycregnive无线电网络的频谱感测

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摘要

In general, signals transmitted by primary users (PUs) in a cognitive radio network have cyclostationary characteristics, whereas, the noise signals do not have any cyclostationary characteristics. Thus, detecting the existence of the PUs can be performed by measuring the cyclostationarity of the signals which are present in the communication channels. In this paper, we propose a sensing algorithm for secondary users (SUs) that uses a set of normalized least mean square (NMLS) adaptive filters in order to estimate the signal in the communication channel from its frequency shifted samples. When the received signal is cyclostationary, i.e. the PUs are transmitting, the norm of the NMLS filters' weights at the related SU is anticipated to be nonzero. On the other hand, when the signal is totally the noise, the norm converges to zero. Therefore, in the proposed algorithm, the sensing is made by comparing the norm of weights to a threshold. We derive the probability of detection and false alarm and by simulations, we compare the performance of our algorithm to other known sensing algorithms with respect to the detection probability and complexity.
机译:通常,在认知无线电网络中由主用户(PU)传输的信号具有循环棘轮特性,而噪声信号没有任何睫状体特性。因此,可以通过测量通信通道中存在的信号的循环调节性来执行检测PU的存在。在本文中,我们提出了一种用于辅助用户(SUS)的传感算法,其使用一组归一化最小均方(NMLS)自适应滤波器,以便从其频移样本估计通信信道中的信号。当接收信号是Cycrationary时,即PU正在发送,相关SU的NMLS滤波器的重量的规范预计是非零。另一方面,当信号完全是噪声时,标准将收敛到零。因此,在所提出的算法中,通过将重量标准与阈值进行比较来进行感测。我们推出了检测和假警报的概率和仿真,我们将算法对其他已知的检测算法的性能进行比较,相对于检测概率和复杂性。

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