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Collaborative Spectrum Sensing for Cognitive Radio: Diversity Combining Approach

机译:认知无线电的协作频谱感知:分集组合方法

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In this paper it is shown that cyclostationary spectrum sensing for Cognitive Radio networks, applying multiple cyclic frequencies for single user detection can be interpreted (with some assumptions) in terms of optimal incoherent diversity addition for “virtual diversity branches” or SIMO radar. This approach allows proposing, by analogy to diversity combining, suboptimal algorithms which can provide near optimal characteristics for the Neyman-Pearson Test (NPT) for single user detection. The analysis is based on the Generalized Gaussian (Klovsky-Middleton) Channel Model, which allows obtaining the NPT noise immunity characteristics: probability of misdetection error (PM) and probability of false alarm (Pfa) or Receiver Operational Characteristics (ROC) in the most general way. Some quasi-optimum algorithms such as energetic receiver and selection addition algorithm are analyzed and their comparison with the noise immunity properties (ROC) of the optimum approach is provided as well. Finally, the diversity combining approach is applied for the collaborative spectrum sensing and censoring. It is shown how the diversity addition principles are applied for distributed detection algorithms, called hereafter as SIMO radar or distributed SIMO radar, implementing Majority Addition (MA) approach and Weighted Majority Addition (WMA) principle.
机译:本文表明,认知无线电网络的循环平稳频谱感测,将多个循环频率用于单用户检测,可以根据“虚拟分集”或SIMO雷达的最佳非相干分集增加来解释(有一些假设)。通过类似于分集组合,该方法可以提出次优算法,该算法可以为单用户检测的Neyman-Pearson测试(NPT)提供接近最佳的特性。该分析基于广义高斯(Klovsky-Middleton)信道模型,该模型可以获取NPT噪声抗扰性特征:误检测概率(PM)和误报概率(Pfa)或接收器操作特征(ROC)最多。一般方式。分析了诸如能量接收器和选择相加算法之类的准最优算法,并将它们与最优方法的抗噪性能(ROC)进行了比较。最后,将分集组合方法应用于协作频谱感测和审查。展示了如何将分集相加原理应用于分布式检测算法(以下称为SIMO雷达或分布式SIMO雷达),如何实现多数派加法(MA)方法和加权多数派加法(WMA)原理。

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