彩色噪声下的频谱传感性能分析

Amit Khandelwal, Chhagan Charan
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引用次数: 2

摘要

频谱感知(SS)是认知无线电(CR)中检测主用户(PU)和为次用户获取机会频谱的基本要求。许多传感技术受到多径衰落和阴影的限制,从而降低了传感性能。因此,噪声在频谱感知中起着重要的作用。本文分析了基于特征值技术的相关噪声条件。我们考虑基于标准条件数(SCN)的统计量来决定统计量进一步基于随机矩阵理论(RMT)。首先分析了存在相关噪声时基于特征值的马尔琴科-巴斯德定律。由于MP法的性能下降,我们使用了新的基于SCN的阈值。我们分析了在相关噪声的情况下,新的边界提高了性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance analysis of spectrum sensing under coloured noise
Spectrum sensing (SS) is an essential requirement in Cognitive Radio (CR) to detect primary user (PU) and to access the opportunistic spectrum for secondary users. Several sensing techniques are limited by multipath fading and shadowing which degrade the sensing performance. Hence noise plays an important role in spectrum sensing. Herein, we analyze the condition of correlated noise based on eigenvalue technique. We consider Standard Condition Number (SCN) based statistics for decision that statistics are further based on Random Matrix Theory (RMT). First we analyze the eigenvalue based Marchenko-Pastur (MP) Law in presence of correlated noise. Due to degradation in performance of MP Law, we use new SCN based threshold. We analyze that the new bound increases the performance in case of correlated noise.
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