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首页> 外文期刊>Malaysian Journal of Computer Science >Spectrum-aware Distributed Channel Assignment for Cognitive Radio Wireless Mesh Networks
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Spectrum-aware Distributed Channel Assignment for Cognitive Radio Wireless Mesh Networks

机译:认知无线电无线网状网络的频谱感知分布式信道分配

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摘要

In Cognitive Radio Networks, the application throughput is not only affected by primary user activity but also by numerous environment factors such as interference. Therefore, channel assignment for cognitive radio networks should not only consider channel idle time but also an error rate perceived on the channel. The spectrum-aware channel assignment is vital to efficiently utilize the network resources. In this paper, we propose Spectrum-aware Channel Assignment (SaCA) algorithm for multi-radio, multi-channel cognitive radio networks. We have simulated our proposed algorithm in OMNeT++, an open source discrete event simulator, and compare its performance with the spectrum-unaware channel assignment (SuCA) algorithm. The performance of channel assignment is evaluated for packet delivery ratio and number of channel switches by varying the number of primary users, number of channels and primary user activity ratio. The performance of SaCA is better for large number of channels, primary users and higher primary user activity ratio in the network. In comparison with SaCA, average packet delivery ratio more sharply decreases with increase in number of primary users for SuCA.
机译:在认知无线电网络中,应用程序吞吐量不仅受到主要用户活动的影响,还受到众多环境因素(例如干扰)的影响。因此,认知无线电网络的信道分配不仅应考虑信道空闲时间,而且还应考虑在信道上感知的错误率。频谱感知信道分配对于有效利用网络资源至关重要。在本文中,我们提出了用于多无线电,多信道认知无线电网络的频谱感知信道分配(SaCA)算法。我们已经在开放源代码离散事件模拟器OMNeT ++中模拟了我们提出的算法,并将其性能与不感知频谱的信道分配(SuCA)算法进行了比较。通过更改主要用户数,通道数和主要用户活动率来评估数据包分配率和信道切换数的信道分配性能。对于网络中的大量通道,主要用户和更高的主要用户活动率,SaCA的性能更好。与SaCA相比,SuCA的平均数据包传递率随着主要用户数量的增加而急剧下降。

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