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A Quantization-Based Multibit Data Fusion Scheme for Cooperative Spectrum Sensing in Cognitive Radio Networks

机译:基于量化的认知无线电网络中协作频谱感知的多位数据融合方案

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摘要

Spectrum sensing remains a challenge in the context of cognitive radio networks (CRNs). Compared with traditional single-user sensing, cooperative spectrum sensing (CSS) exploits multiuser diversity to overcome channel fading, shadowing, and hidden terminal problems, which can effectively enhance the sensing performance and protect licensed users from harmful interference. However, for a large number of sensing nodes that need high bandwidth of the control channel for data transmitting, CSS increases cooperative overhead. To address this problem, we investigated the soft decision fusion strategy under a limited bandwidth of the control channel and proposed a simple quantization-based multibit data soft fusion rule for CSS for its simple structure and easily implementation. Under the quantization-based sensing strategy, each cooperative secondary user (SU) adopts an energy detector for local spectrum sensing. Each SU transmits quantized multibit data that sends local sensing information, instead of forwarding local one-bit hard decision results or original observation statistics, to the fusion center (FC). Furthermore, the closed-form expressions of the quantization levels and the quantization thresholds are analytically derived. Simulation results indicate that the detection performance of the proposed method approaches that of the conventional soft fusion rule with less cooperative overhead and outperforms the hard decision rules. Extensive simulations also show that multibit quantization fusion achieves a desirable tradeoff between the sensing performance and the control channel overhead for CSS.
机译:在认知无线电网络(CRN)的背景下,频谱感测仍然是一个挑战。与传统的单用户感知相比,协作频谱感知(CSS)利用多用户多样性来克服信道衰落,阴影和隐藏终端问题,从而可以有效地增强感知性能并保护许可用户免受有害干扰。然而,对于大量需要控制信道的高带宽进行数据传输的传感节点,CSS增加了协作开销。为了解决这个问题,我们研究了在控制信道的有限带宽下的软决策融合策略,并为CSS提出了一种基于量化的简单多比特数据软融合规则,其结构简单且易于实现。在基于量化的感知策略下,每个合作的次要用户(SU)都采用能量检测器来进行本地频谱感知。每个SU都发送量化的多位数据,该数据发送本地传感信息,而不是将本地一位硬决策结果或原始观察统计信息转发到融合中心(FC)。此外,通过分析得出量化水平和量化阈值的闭合形式。仿真结果表明,该方法的检测性能与传统的软融合规则相比具有更少的协作开销,并且性能优于硬决策规则。大量的仿真还表明,多位量化融合在CSS的感测性能和控制通道开销之间实现了理想的折衷。

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