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Cooperative parallel spectrum sensing in cognitive radio networks using bipartite matching

机译:使用双向匹配的认知无线电网络中的协作并行频谱感知

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Spectrum sensing is one of the key steps for implementing the cognitive radio-based systems. The efficiency and the effectiveness of spectrum sensing have a profound impact on the performance of the cognitive users. In this paper, we propose two cooperative-parallel spectrum sensing algorithms. The cooperation greatly reduces the sampling time for each secondary user and increases the efficiency. Our proposed algorithms utilize adaptive schemes as well as the graph theoretical analysis to obtain the best strategy for channel sensing in the secondary users. In this work, we model the cooperative spectrum sensing problem with a bipartite graph. Assigning channel sensing tasks to the secondary users corresponds to finding the perfect matching on that graph. Two different algorithms are developed based on the different complexity levels of the underlying matching algorithms. The performances of these algorithms are compared with each other and with other related algorithms from the literature.
机译:频谱感测是实现基于认知无线电的系统的关键步骤之一。频谱感测的效率和有效性对认知用户的表现产生深远影响。在本文中,我们提出了两种协作并行频谱感知算法。这种合作大大减少了每个次要用户的采样时间,并提高了效率。我们提出的算法利用自适应方案以及图形理论分析来获得次要用户的最佳信道感知策略。在这项工作中,我们用二部图对协作频谱感测问题进行建模。将信道感测任务分配给次要用户对应于在该图上找到完美匹配。基于基础匹配算法的不同复杂度,开发了两种不同的算法。将这些算法的性能相互比较,并与文献中的其他相关算法进行比较。

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