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Spectrum sensing based on fractional lower order moments for cognitive radios in α-stable distributed noise

机译:基于分数低阶矩的α稳定分布噪声中认知无线电的频谱感知

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摘要

The traditional spectrum sensing methods based on second order statistics are in general not applicable to detecting a primary user with unknown parameters in non-Gaussian noises. This paper presents a novel spectrum sensing scheme based on fractional lower order moment (FLOM) for the detection of a primary user in non-Gaussian noise that are modeled by the a-stable distribution. The new detector does not require any a priori knowledge about the primary user (PU) signal and channels. The statistics of the proposed FLOM detector are defined in a multi-user cooperative framework and its detection and false alarm probabilities as well as deflection coefficient are analyzed for both non-fading and Rayleigh fading communication channels between the primary and secondary users. The detection performance of the proposed method versus the generalized signal-to-noise ratio, the characteristic exponent α and the number of cooperative users is also studied along with comparison to the Cauchy detector through computer simulations. Analytical and simulation results show that the proposed FLOM detector has a much better performance than the Cauchy detector in the a-stable distributed noise environment It is also shown that multi-user cooperative sensing leads to a significantly higher probability of detection than the single user version.
机译:基于二阶统计量的传统频谱感测方法通常不适用于检测非高斯噪声中参数未知的主要用户。本文提出了一种基于分数低阶矩(FLOM)的新颖频谱感测方案,用于以a稳定分布为模型在非高斯噪声中检测主要用户。新的检测器不需要任何有关主要用户(PU)信号和通道的先验知识。在多用户协作框架中定义了所提出的FLOM检测器的统计数据,并针对主要用户和次要用户之间的非衰落和瑞利衰落通信信道,分析了其检测和虚警概率以及偏转系数。还通过计算机仿真研究了该方法相对于广义信噪比,特征指数α和合作用户数量的检测性能,并与柯西检测器进行了比较。分析和仿真结果表明,所提出的FLOM检测器在非稳定分布噪声环境中的性能比柯西检测器好得多。还表明,与单用户版本相比,多用户协作感测的检测概率要高得多。 。

著录项

  • 来源
    《Signal processing》 |2015年第6期|94-105|共12页
  • 作者单位

    College of Electronics and Information Engineering, Nanjing Tech University, Nanjing 211816, China,Institute of Signal Processing and Transmission, Nanjing University of Posts and Telecommunications, Nanjing 210003, China;

    Institute of Signal Processing and Transmission, Nanjing University of Posts and Telecommunications, Nanjing 210003, China,Department of Electrical and Computer Engineering, Concordia University, Montreal, Quebec, Canada H3G 1M8;

    Department of Electrical and Computer Engineering, McGill University, Montreal, Quebec, Canada H3A 0E9;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Cognitive radio; Spectrum sensing; Non-Gaussian noise; Fractional lower order moment; α-Stable distribution; Rayleigh fading;

    机译:认知广播;频谱感测;非高斯噪声;低阶分数阶矩;α稳定分布;瑞利衰落;

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