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Wide-Band Cooperative Compressive Spectrum Sensing Using Distributed Sensing Matrix for Cognitive Radio Systems

机译:认知无线电系统中使用分布式传感矩阵的宽带协作压缩频谱传感

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摘要

In this paper, cooperative compressive spectrum sensing is considered to enable accurate sensing of the wide-band spectrum. The proposed algorithm is based on compressive sensing theory and aims to reduce the hardware complexity of the cognitive radio receiver by distributing the sensing work among groups of sensing nodes. The proposed algorithm classifies the cooperated sensing nodes into different sensing groups depending on the quality of the reporting channel between the sensing node and the fusion center (FC). To sense the wide-band analog signal and take a global decision about spectrum occupancy, each node uses its local sensing matrix, which is assigned to its sensing group and a part of a global sensing matrix at the FC. The size of the local sensing matrix of each sensing node, and consequently the contribution of this, node in the overall measurement vector, depends on its sensing group. The FC classifies and rearranges the compressed data to formulate one global measurement vector which is used with a global sensing matrix to estimate the wide-band signal spectrum. The receiver operation characteristics (ROC) of the overall spectrum sensing system show that the proposed receiver provides more protection to primary users (higher detection probability) at the same secondary user throughput (probability of false alarm).
机译:在本文中,协作压缩频谱感测被认为可以实现宽带频谱的精确感测。所提出的算法基于压缩感测理论,旨在通过在感测节点的组之间分配感测功来降低认知无线电接收机的硬件复杂度。所提出的算法根据感测节点与融合中心(FC)之间报告通道的质量将协作的感测节点分为不同的感测组。为了感测宽带模拟信号并就频谱占用做出全局决策,每个节点都使用其本地感测矩阵,该矩阵被分配给它的感测组和FC上全局感测矩阵的一部分。每个传感节点的局部传感矩阵的大小以及该节点在整个测量向量中的贡献取决于其传感组。 FC对压缩数据进行分类和重新排列,以制定一个全局测量向量,该向量与全局感测矩阵一起使用,以估计宽带信号频谱。整个频谱感测系统的接收器操作特性(ROC)表明,在相同的辅助用户吞吐量(错误警报的可能性)下,所提出的接收器为主要用户提供了更多保护(更高的检测概率)。

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