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Multi-channel Energy Detection Under Phase Noise: Analysis and Mitigation

机译:相位噪声下的多通道能量检测:分析和缓解

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For the development of highly integrated, flexible and low-cost cognitive radio (CR) devices, simple transceiver architectures, like direct-conversion receiver, are expected to be deployed and provide viable radio frequency (RF) spectrum sensing solutions for practical implementation. Yet, this can be very challenging task especially if spectrum sensing and down-conversion are conducted over multiple RF channels simultaneously for improved efficiency in channel scans. Then, the so-called dirty RF problem that degrades link performance of traditional transmission systems starts to be influential from spectrum sensing perspective as well. The unavoidable RF impairments, e.g., oscillator phase noise in direct-conversion receiver, could generate crosstalk between multiple channels that are down-converted simultaneously, and thus considerably limit the spectrum sensing capabilities. Most of the existing spectrum sensing studies in literature assume an ideal RF receiver and have not considered such practical RF hardware problem. In this article, we study the impact of oscillator phase noise on energy detection (ED) based spectrum sensing in multi-channel direct-conversion receiver scenario. With complex Gaussian primary user (PU) signal models, we first derive the detection and false alarm probabilities in closed-form expression. The analytical results, verified through extensive simulations, show that the wideband multi-channel sensing receiver is very sensitive to the neighboring channel crosstalk induced by oscillator phase noise. More specifically, it is shown that the false alarm probability of multi-channel energy detection increases significantly, compared to the ideal RF receiver case. The exact performance degradation depends on the power of neighboring channels as well as statistical characteristics of the phase noise in the deployed receiver. In order to prevent such performance degradation in spectrum identification, an enhanced energy detection technique is proposed. The proposed technique calculates the leakage power from neighboring channels for each channel and improves the sample energy statistics by subtracting this leakage power from the raw values. An analytical expression is derived for the leakage power which is shown to be a function of power spectral levels of neighboring channels and 3-dB bandwidth of phase noise process. Practical schemes for estimating these two quantities are discussed. Extensive computer simulations show that the proposed enhanced detection yields false alarm rates that are very close to those of an ideal RF receiver and hence clearly outperforms classical energy detection.
机译:为了开发高度集成,灵活且低成本的认知无线电(CR)设备,有望部署简单的收发器体系结构,例如直接转换接收器,并为实际实现提供可行的射频(RF)频谱感测解决方案。然而,这可能是非常具有挑战性的任务,尤其是如果同时在多个RF通道上进行频谱感测和下变频以提高通道扫描的效率时。然后,从频谱感测的角度来看,使传统传输系统的链路性能下降的所谓脏射频问题也开始产生影响。不可避免的RF损伤(例如直接转换接收器中的振荡器相位噪声)可能会在同时下变频的多个通道之间产生串扰,从而大大限制了频谱感测能力。文献中大多数现有的频谱感测研究都假设理想的RF接收器,并且没有考虑到这种实际的RF硬件问题。在本文中,我们研究了振荡器相位噪声对多通道直接转换接收机方案中基于能量检测(ED)的频谱感知的影响。使用复杂的高斯主要用户(PU)信号模型,我们首先导出闭式表达式中的检测概率和虚警概率。通过大量仿真验证的分析结果表明,宽带多通道感应接收器对振荡器相位噪声引起的相邻通道串扰非常敏感。更具体地,示出了与理想的RF接收器情况相比,多通道能量检测的错误警报概率显着增加。确切的性能下降取决于相邻信道的功率以及所部署接收机中相位噪声的统计特性。为了防止频谱识别中的这种性能下降,提出了一种增强的能量检测技术。所提出的技术为每个通道计算来自相邻通道的泄漏功率,并通过从原始值中减去该泄漏功率来改善样本能量统计。导出了泄漏功率的解析表达式,该表达式表示为相邻信道的功率谱电平和相位噪声过程的3 dB带宽的函数。讨论了估计这两个数量的实用方案。大量的计算机模拟表明,所提出的增强检测产生的误报率非常接近理想RF接收器的误报率,因此明显优于传统的能量检测。

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