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Secondary users selection and sparse narrow-band interference mitigation in cognitive radio networks

机译:认知无线电网络中的二级用户选择和稀疏窄带干扰缓解

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摘要

Spectrum scarcity is a critical problem that may reduce the effectiveness of wireless technologies and services. To address this problem, different spectrum management techniques have been proposed in the literature such as overlay cognitive radio (CR) where the unlicensed users can share the same spectrum with the licensed users. The main challenges in overlay CR networks are the identification and detection of the Primary User (PU) signals in a multi-source narrow-band interference (NBI) scenario. Therefore, in this paper, we investigate the performance of an orthogonal frequency division multiplexing (OFDM) overlay CR network with Secondary Users (SUs) and subcarriers selection schemes. Three approaches for SUs and subcarriers Selection named Direct, Distributed and Incremental selection techniques are proposed in this paper to increase the expected signal to interference and noise ratio based on full or partial knowledge of the channel state information (CSI). We also show that Distributed selection techniques provide all the SUs equal chances to be selected without affecting the selection diversity gain. General as well as simplified outage probability expressions are derived and extensive simulations are conducted to evaluate the performance of the proposed techniques and support the theoretical derivations. To accommodate more SUs, a new approach for asynchronous NBI estimation and mitigation in CR networks is investigated. Without any prior knowledge of the NBI characteristics and based on sparse signal recovery theory, the proposed approach allows the PU to exploit the sparsity of the SUs interference to recover it and approach the interference-free limit over practical ranges of NBI power levels.
机译:频谱稀缺是一个关键问题,可能会降低无线技术和服务的效率。为了解决这个问题,在文献中已经提出了不同的频谱管理技术,例如覆盖认知无线电(CR),其中未许可用户可以与许可用户共享相同频谱。覆盖CR网络中的主要挑战是在多源窄带干扰(NBI)情况下识别和检测主要用户(PU)信号。因此,在本文中,我们研究了具有辅助用户(SU)和子载波选择方案的正交频分复用(OFDM)覆盖CR网络的性能。本文提出了三种用于SU和子载波选择的方法,分别称为直接,分布式和增量选择技术,以基于信道状态信息(CSI)的全部或部分知识来提高预期的信噪比和噪声比。我们还表明,分布式选择技术为所有SU提供了相等的被选择机会,而不会影响选择分集增益。得出了一般以及简化的中断概率表达式,并进行了广泛的仿真,以评估所提出技术的性能并支持理论推导。为了容纳更多的SU,研究了CR网络中异步NBI估计和缓解的新方法。在没有任何关于NBI特性的先验知识的情况下,并且基于稀疏信号恢复理论,所提出的方法允许PU利用SUs干扰的稀疏性来恢复它,并在NBI功率水平的实际范围内达到无干扰的极限。

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