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首页> 外文期刊>IEEE Journal on Selected Areas in Communications >Clustering-Based Spectrum Sharing Strategy for Cognitive Radio Networks
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Clustering-Based Spectrum Sharing Strategy for Cognitive Radio Networks

机译:认知无线电网络中基于聚类的频谱共享策略

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In this paper, we propose a clustering-based resource allocation (RA) scheme for the multiuser orthogonal frequency division multiplexing (OFDM)-based cognitive radio network, where we aim to maximize the sum capacity of the secondary users (SUs) subject to practical constraints in wireless environment. Our general RA optimization task leads to a challenging mixed integer programming problem that is computationally intractable. We first introduce a simple and efficient clustering method to divide all the SUs into multiple groups based on their mutual interference degrees, where the SUs in different groups can share the same OFDM subchannels to improve spectrum utilization efficiency, while the SUs with heavy mutual interference cluster together in the same group and employ different subchannels to alleviate their mutual interference. Then we develop efficient radio RA algorithms to maximize the sum rate of the SUs in each cluster. A user-oriented subchannel assignment method is presented to remove the awkward integer constraints of the formulated RA problem, followed by a fast power distribution algorithm that can work out optimal solutions with an approximate linear complexity. Simulation results indicate that our proposed RA scheme can improve the throughput of the SUs significantly as compared with other methods. Moreover, our proposed RA algorithms converge stably and quickly.
机译:在本文中,我们为基于多用户正交频分复用(OFDM)的认知无线电网络提出了一种基于聚类的资源分配(RA)方案,我们的目标是在实际应用中最大化次要用户(SU)的总容量。无线环境中的约束。我们一般的RA优化任务导致了一个具有挑战性的混合整数编程问题,该问题在计算上是棘手的。首先,我们介绍一种简单有效的聚类方法,根据相互干扰程度将所有SU分为多个组,不同组中的SU可以共享相同的OFDM子信道,从而提高频谱利用率,而相互干扰较大的SU则可以。在同一组中一起使用,并采用不同的子信道来减轻它们的相互干扰。然后,我们开发有效的无线电RA算法,以最大化每个群集中SU的总和。提出了一种面向用户的子信道分配方法,以消除公式化RA问题的笨拙整数约束,然后提出一种快速功率分配算法,该算法可以得出近似线性复杂度的最优解。仿真结果表明,与其他方法相比,本文提出的随机接入方案可以显着提高SU的吞吐量。此外,我们提出的RA算法稳定且快速收敛。

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