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A Cooperative Spectrum Sensing Technique with Dynamic Frequency Boundary Detection and Information-Entropy-Fusion for Primary User Detection

机译:动态频率边界检测和信息熵融合的主要用户检测协作频谱感知技术

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摘要

The invention of cognitive radio concept is aimed to overcome the spectral scarcity issues of emerging radio systems by exploiting under-utilization of licensed spectrum. As the cognitive users (secondary users) are only allowed to use a licensed spectrum in the absence of its rightful owner, the ability to accurately sense the presence of the rightful owners (primary users) is highly essential. The traditional way of having individual secondary users perform their own spectrum sensing is vulnerable to the presence of noise and shadowing of propagation channel. Cooperative spectrum sensing emerges as an attractive alternative that exploits the inherent geospatial diversity of multiple cognitive radios to enhance the robustness of sensing accuracy. Two specific issues in cooperative spectrum sensing are discussed in this paper. The first issue is on dynamic detection of primary user's bands. A dynamic band clustering (DBC) algorithm that uses K-means clustering technique is proposed in this paper. The proposed algorithm reduces the number of erroneous narrow subbands resulting from spurious noise. This in turn minimizes the number of subbands to be detected and hence the overall sensing time. The second issue is on reducing the overheads required to facilitate fusion center operation. A novel entropy-based maximal ratio combining for decision-fusion center is also proposed in this paper. Based on extensive simulation studies, the proposed fusion technique is shown to be comparable to conventional information-fusion techniques. The performance offered by the proposed technique is achieved with significant reduction in the bandwidth overheads.
机译:认知无线电概念的发明旨在通过利用许可频谱的未充分利用来克服新兴无线电系统的频谱稀缺问题。由于认知用户(次要用户)仅在其合法所有者不存在的情况下才允许使用许可频谱,因此准确感知合法所有者(主要用户)的存在的能力至关重要。让各个辅助用户执行自己的频谱感测的传统方式容易受到噪声和传播通道阴影的影响。合作频谱感测作为一种有吸引力的替代方法出现,它利用了多个认知无线电的固有地理空间多样性来增强感测精度的鲁棒性。本文讨论了协作频谱感知中的两个具体问题。第一个问题是动态检测主要用户的频段。提出了一种采用K均值聚类技术的动态带聚类算法。所提出的算法减少了由杂散噪声引起的错误的窄子带的数量。这又使要检测的子带的数量最小,从而使总的检测时间最小。第二个问题是减少促进融合中心运营所需的开销。本文还提出了一种基于熵的决策融合中心最大比率组合算法。基于广泛的仿真研究,所提出的融合技术显示出与常规信息融合技术相当的优势。所提出的技术提供的性能是通过带宽开销的显着减少而实现的。

著录项

  • 来源
    《Circuits, systems, and signal processing》 |2011年第4期|p.823-845|共23页
  • 作者单位

    School of Computer Engineering, Center for Multimedia and Network Technology, Nanyang Technological University, Singapore 639798, Singapore;

    School of Computer Engineering, Center for Multimedia and Network Technology, Nanyang Technological University, Singapore 639798, Singapore;

    School of Computer Engineering, Center for Multimedia and Network Technology, Nanyang Technological University, Singapore 639798, Singapore;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    cognitive radio; stand-alone spectrum sensing; distributed spectrum sensing;

    机译:认知无线电;独立频谱感测分布式频谱感测;

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